TENTANG EPISODE INI
Thinking is becoming a manufactured good. Liam Nelson of Early Riders walks through the Singularity Stack — the conversion chain from raw energy to compute, models, harnesses, agents, and final settlement, and why Bitcoin sits at the end of that stack.
This is a builder-and-allocator conversation: energy bottlenecks, the economics of models vs. harnesses, agent-to-agent markets, and why technological deflation and hard money pull in opposite directions. If you allocate capital, build infrastructure, or think in Bitcoin as the hurdle rate, this is the map.
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Chapters
00:00 Introduction to Liam Nelson and Early Riders
03:45 The shift from high to low time preference investing
04:37 Creating the Singularity Stack: framework and motivation
05:36 AI adoption and parallels with internet growth
06:28 The analogy of electricity and technological progress
13:24 The nine layers of the Singularity Stack
22:24 Energy as the foundation of the stack
26:28 Energy bottlenecks and infrastructure challenges
33:03 Models, harnesses, and the economics of AI models
37:55 The role of agents, identity, and coordination
44:24 Innovations like Hugging Face and open source robots
45:33 The agent to agent economy and future productivity
50:22 Inflation versus deflation in technology and money
55:01 Key takeaways and future opportunities
Resources
https://earlyriders.com/singularity-stack/
Build With Bitcoin:
https://www.buildwithbitcoin.xyz/
⏤ ⏤ ⏤
❗ DISCLAIMER: This show is for entertainment purposes only. Before making any decisions consult a professional.
TAMPILKAN CATATAN 🔗
TRANSKRIP 🔗
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This isn't for everyone. It's for the ones who know the
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old system is broken and are ready to build something that
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lasts. Welcome to the Build with Bitcoin podcast. We're co-host
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Iraiden Lynne, and today we're doing a deep dive with Early
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Writers partner Liam Nelson. We're going to get into your
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research report. We'll be unpacking everything called the
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Singularity Stack. But first of all, welcome to the podcast, and
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thanks for joining us.
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Thanks for having me. First time, long time. Really
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appreciate the show and all the knowledge that you guys have put
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out over the years, so thanks for having me.
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We we appreciate you guys, and early congrats on the
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report because it's a fascinating research project
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that you guys put out. And before that, let's maybe get to
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know you a little bit. I mean, what can you share about your
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background, Liam, and what brought you to Bitcoin?
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Yeah, for sure. Just really quick background on
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was finance major at Georgetown Business School, and
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then started off my career at Point 72. For those who don't
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know, it's founded by Steve Cohen, and they are about a $40
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billion long short hedge fund, primarily trading U.S. equities.
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And I was there from 2019 to 2022, and the time there was
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particularly interesting because I was able to join for all the
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issues related to tariffs, and then was covering a lot of the
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consumer and industrial sectors during COVID too, and so was
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able to to cover companies like Walmart, Target, all the
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consumer goods. Is there was issues related to toilet paper
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running out, and and then got to be able to see everything from
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the run up after that too. As there, I was doing deep dives on
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on businesses and companies, and seeing the fundamentals be
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completely dislocated from the actual valuations of the stock
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prices. And so during that time, both both myself trying to
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understand what was going on from an individual level, as
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well as the firm, really was going deep into the macro side
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of things too, and obviously trying to understand what's
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going on with the Fed, monetary policy, etc. And that's a lot of
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what led me to find Bitcoin during my time there. Point 72
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had an average hold period of only 33 days, so incredibly
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short and very thesis in momentum and like event-driven
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firm for holding stocks, and so it was a fascinating time to be
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there, where there was no shortage of events going on
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around that time, and we actually worked and funded
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Melvin Capital on the wrong side of the GameStop trade, and so
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we-I wasn't personally in there, but we, as a firm, we were
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pretty close, and so that was just the point that I was like,
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"What the hell is going on with the entire financial system?
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There's some something else going on at play, and and really
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found Bitcoin deeply tried to you know spend all of my waking
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hours outside of the firm to go deep there and understand what
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was going on, and and as we all kind of come out the other side,
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understanding where this all goes in the long term. That was
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my kind of moment there. I spent a few years after that in
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private equity at a firm called Kobe Capital, and then joined
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Early Riders about two years ago now, had read their white paper
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around Bitcoin being the hurdle rate and how it aligns
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incentives from LPs, GPs, and founders all trying to make more
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Bitcoin and using that as a hurdle rate. And it just made
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too much sense to me, and thought that all other financial
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firms, whether it be private equity, et cetera, would be
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either adopt this model eventually or be competed away,
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and so yeah, that's a little bit of my background and how we got
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here. I
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love it. You you really went from extreme high
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time preference to low time preference in terms of your
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investment theories and and outlooks. And and we've had
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Michael Tanguma on our podcast before, and early writers, and
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we love the story. I mean, we we couldn't agree more with you
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that we think that that's ultimately the way, the
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direction everything needs to flow. And I want to talk a
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little bit more about your role and and how you came to write
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this report, the Singularity Stack. So you you're really
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focused as a partner in in the firm on due diligence and
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portfolio operations. How did how did you come to create this
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research report? I mean, and I can't wait to dive into it
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because I just find it fascinating. But did you create
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it as a kind of a framework for how you're looking at the
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companies that come across your desk, or or how did how did that
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arise?
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Yeah, honestly, we try to pay attention to a lot of
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interesting signals out there, and I right now AI is obviously
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the most interesting thing in the room. There was a chart
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going around yesterday too that Open Router put out around token
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usage, and it was over the past two years, it's up over 25,000%
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and that's obviously just. Astounding! It's really showing
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just the amount of adoption that this that these tools are
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getting, and it's really fascinating too because, like,
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as an investor and and somebody who is trying to understand
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where the world is moving, I saw a lot of similarities between
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like what Jeff Bezos was doing when he was at D Shaw and and
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saw the internet grow. I think it was 2300 time percent year
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over year, which doesn't necessarily happen. And that's
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something that's free to use for any individual. Whereas you
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know, obviously, tokens on open router have a cost associated
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with them. And so obviously, out of that, he built Amazon and you
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know, selling books online at first doesn't sound very sexy,
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but we understood kind of by being on the frontier that it
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wasn't just going to be books; it was going to be more than
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that. They were going to sell everything, and obviously got
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into data centers out of that, and have try like built it into
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a massive company. And so I think that you know, just
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myself, and and I think a lot of people out there really are
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understand are trying to understand what are the second,
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third, fourth order implications of AI as the cost of
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intelligence goes near to zero, and what sort of businesses can
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be built out of that. What does that mean for my role today and
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in the future? And so that's kind of a little bit of the
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impetus of why I tried to do it because I think that it does
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have just profound implications for pretty much every part of
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the economy. Yeah, and I imagine it it clicked with the
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early writers team, the other partners right away, and
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kind of gave you the green light to to work on this. Well, I
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mean, before we we get into the framework, Liam, I want to just
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make sure I don't miss on asking you. Sometimes we, you know, we
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kind of go through our background and and keep it
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concise, and the transitions sound pretty smooth. But for
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others who are maybe going through, you know, similar
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career transitions or desiring to do so, I want to ask this
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question. I mean, from point 72 to working at a at a Bitcoin
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Bitcoin firm, it's not that easy of a transition necessarily. So,
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what helped you along the way?
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Yeah, that's a great question, and really appreciate
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it. I guess I was coming at it from the angle that there was a
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massive information asymmetry that's publicly available,
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whereas you know you guys put out a ton of great research and
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really make the information available about why Bitcoin's so
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important, etc. But there are so many folks out there that are
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you know even J.P. Morgan or Jamie Dimon from J.P. Morgan
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says like Satoshi can just come back and inflate the Bitcoin
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supply, and so with that, like I understood just by speaking with
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a bunch of folks that there was a lot of information asymmetry,
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and you know, eventually they would come around to why Bitcoin
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is valuable, and you know, would would need to allocate to it
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later on, just because economic forces would eventually get them
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there, because you know they would see their savings diminish
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over time in real value if they didn't allocate to Bitcoin, and
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so with that, I I understood you know it's it makes sense to
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allocate to the asset itself, and then I tried to understand
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well there could be other implications here too if you
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know the monetary system is inflating 7% a year, like
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there's going to be better information that can teach
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people about that, whether it's the internet, podcasts, AI, and
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there are going to be other implications for that too. And
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so, one of them that I thought about was there are going to be
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companies that will, you know, benefit from a lot more folks
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who trade Bitcoin? Who want to custody Bitcoin, lend against
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it, etc. There will be like an entire changing of financial
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services around that. And I actually thought about it too,
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and and I was like, well, if there are X amount of people
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today that own Bitcoin and Bitcoin's going to go up Y
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amount, like the amount of new, like new people trading Bitcoin
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and and financial services around it will actually likely
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increase faster than just Bitcoin itself, and so that that
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was kind of a moment that clicked for me that tried to
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understand like, well, if you back the right founders who are
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building interesting categories in here, then there's a massive
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opportunity for growth, and it's a really big investable category
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to back the infrastructure. To date, we've seen a lot of
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distractions with digital asset companies. I think you know
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focus on on like meme coins and whatever from like Coinbase's of
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the world, but I think they've obviously financially still done
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extremely well. I think that if you really develop
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differentiated products and see that growth, like it's going to
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be an extremely attractive opportunity. And so I had that
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in mind, and eventually, just you know. Spoke with enough
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companies out there in the space to understood that that was the
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right time. The consumers were kind of waking up, and the
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infrastructure wasn't just it was maturing at the right time.
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That there were more folks who were ready to come into the
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space, and so, but obviously not not yet developed enough for
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everybody, and so that's why I kind of made the the leap to go
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to early riders to help invest in other infrastructure
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companies in the space.
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Well, I think this is a good time to kind of
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get into the analogy of building the infrastructure for Bitcoin
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and what Bitcoin financial rails will look like, and how you
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start your report, the Singularity stack, with kind of
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the the a look back at at electricity and electrical
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lighting. So can you can you start us out by kind of because
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I do think that there is a lack of understanding about how
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important Bitcoin is for future financial services. So maybe you
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can can bring us that analogy that might help people that
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aren't understanding that Bitcoin is so much more than an
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asset that trades, but it's really a foundational protocol.
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Yeah, for sure. I guess taking step back. Yeah, the the
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light. We we started off the paper about the AI singularity
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with the analogy to light because I think that over time
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intelligence is something that's going to be essentially
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available for everybody, and going to be so cheap that it's
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going to be very difficult to even meter it. And so, back in
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the day, like 200 years ago, it would cost three hours of
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somebody's time in order to get an hour of light, and that was
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just because there it was craft good. Like you had to actually
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create, like get whale oil, etc. and create candles yourself.
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Rather, and there wasn't really any use to being up late at
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night because everybody was farmers, and then they're like,
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"What? What can you really even do after light? It's just read a
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book or whatever. But today it costs like less than a 10th of a
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second in order to have an hour of light because we've built up
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all the infrastructure around it, and so I think that
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obviously had massive implications that I think we're
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about to see now as it relates to the first and like first and
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second industrial revolution and how there was then a build out
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of 24/7 manufacturing and supply chain that will go around the
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world, and right now we're starting to see the same amount
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of it with AI and intelligence coming from a craft good that
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you know you have to sit down and think about for a certain
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amount of time versus something that's just on hand callable and
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can be, you know, metered by the second. And so we're starting to
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change the way that we actually pay for goods, and obviously
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intelligence is one of the biggest ones there, and that's
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going to have implications for not just the the way that the
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economy works, but also how it ends up in which payment method
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is ultimately used in the long term.
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So let's kind of connect the dots here, Liam. The report
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lays out nine layers, starting with with raw electricity. Of
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course, this all eventually ties to value and money. Can you take
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us through what the stack is? What what the foundation of the
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stack
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is? Yeah, real quick. It's essentially everything is
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downstream of energy, which is the primary source source of
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energy for everything here. And then after that, it goes to
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compute. So think chips, then chips and data centers. Then
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after that, it's the models themselves, harnesses, which is
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you know Claude Code or CoWork or Hermes, Open Claw, etc.
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Agents that can do the work for you themselves, and then it goes
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into identity, building a web of trust, or exactly what
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permissions you give any specific agent yourself,
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coordinating across them, value transfer and settlement, and so
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we can go into each one of those a bit further. But throughout
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time, the the entire kind of the supply chain has seen
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transaction costs be about 7% of GDP, because there have been
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massive dislocations with the amount of available data at each
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step of the supply chain, the amount of knowledge that's
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available, and I think that right now, all the entire work
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chain at this point is really collapsing significantly into
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all of the data being extremely available, callable instantly,
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and thus a lot less leakage.
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We're recording this on the 17th of of
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September, and in the last week, there's been a lot of
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conversation just around. Is now the time to rein in AI? AI is is
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just advancing so quickly, and some of the leaders of the
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Frontier Labs are calling for more restraint in the growth.
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There have been some incidences that have caused concern about
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how fast it's growing and how independent these agents could
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become in working against or or just working to achieve a goal
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with some disregard of what what constraints may be, how how how
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does that factor in? Or I'm sure that you've thought about this
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in terms of your your structure and the stack that you're laying
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out. What would happen, or what do you see it as even a
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possibility that this can that this stack will have a hiccup or
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will have a you know a scale back in terms of its evolution
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or its growth?
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Yeah, I mean there are a lot of people who are who've
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been screeching about safety recently, especially Dario with
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his "We Must Pace the Frontier" letter recently. I think that
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it's mostly marketing for their IPO and saying that they have
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something that's so powerful that you know it can't be
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released in the wild, and and they're looking for regulatory
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capture for having their friends at Meter, who are funded by the
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same people, be integrated into their businesses, and thus kind
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of add regulatory costs to everything. I think in the the
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long term, we're we're all going to have our own AI that's going
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to be post trained on our own data and and specific to what we
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want to have done. And so with that, there will be an
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incredible amount of foundation models out there, and it it
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can't necessarily just all go to one person. So with respect to
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the actual risks, I think that the risks lie in having a very
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significant amount of compute, and thus being able to take
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either people who want to achieve things that are bad
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because there are bad people in the world, like that will either
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try to steal your Bitcoin or you know want to have cyber attacks
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on U.S. infrastructure, whether it's countries or just terrorist
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groups, and so I think that that is a risk, and I think that you
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know that that should be taken somewhat seriously. But I think
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that the only way to really have that risk be sufficient is
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giving AI a massive amount of compute and allow that to, you
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know, essentially go unbounded to attack systems. And so the
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only way that that obviously is hap is capable with open source
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models. But honestly, I think that there is a relatively low
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risk of people running open source models on their their
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laptop that are able to like really attack U.S. critical
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infrastructure, and so I think that the what it all comes down
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to is that these frontier labs are trying to just limit the
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amount of capabilities that people can have, so that they
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don't need to train their models even more because they have
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these upcoming IPOs. I don't. I don't know what you guys think
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about that as well. But it feels like a lot of hysteria that
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isn't necessarily grounded in anything because we, while we've
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seen that one OpenAI hugging face incident, there hasn't been
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anything else that's really significant at this point.
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I'm actually just shocked at how many times
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I'm hearing the the name of the company Hugging Face on on in
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traditional media these days, and I've been familiar with and
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using the company for about eight or nine years now. I I
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used to invest heavily in AI, and so I'm familiar with it. But
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yeah, it does feel that there's a you know coordinated effort,
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or somebody is just like you know, just piling onto this
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news, and it feels unusual. It feels like an unusual time and
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space. And I agree with you that I think it would be related to
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the IPO or or just the fear that these frontier labs who have
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raised so much investment capital and have very
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significant valuations that they need to live up to are now
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facing pressure from open source labs around the world and
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different other models and different other financial models
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that could disrupt their business and and make their
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valuations tumble down, which is a risk, frankly, to the U.S.
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stock market because so much of the market is based on the
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valuations of these AI and AI related companies. So, yeah,
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interesting. I I would tend to agree. Israel, what about you?
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No,
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I mean I just don't see how that you can stop something
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like this. I mean, even even if some of these claims were true,
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which to be clear, and to your point, Liam, I also haven't seen
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any hard evidence or data behind this. It's all just kind of been
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these stories or yeah claims. Ultimately, so it's hard to
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know. But even regardless of that, I mean, I think both
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Bitcoin and AI are technologies that are now out there, and you
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you can't really stop them. You know, in in a way because of the
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game theory. Bitcoin, of course, is a lot more decentralized and
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open than than AI. AI is still concentrated in a few global
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players, but I mean, ultimately, my mindset around that is you
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would need very coordinated global efforts from you know
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adversaries, even you know geopolitically, to actually slow
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this down and or you know try to pause it, so I just don't see
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it. I mean, I think the game theory just doesn't allow it.
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Yeah, and I think
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that it's almost similar to the crypto wars of the 80s,
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back when they were trying to make encryption illegal, weapons
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grade, et cetera, and into a lot of the Atomback and other
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cypherpunks of that area era really tried to combat that with
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their work with PGP. And I think that yeah, I mean there are
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people that use encryption for bad things. Like that's I think
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that's well known. But I think that just like AI, like
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encryption is a tool for privacy, and and it does create
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a lot of great things. And similarly, I think that you know
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there there will be probably some small negative implications
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from AI. But I think that the amount of abundance and goodness
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that it will create for everybody out there, from you
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know allow causing deflation for goods and services to curing
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diseases, allowing people to live healthier lives, saving
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them time to work more on what they actually want to work on.
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It's going to be a massive net positive, and I don't think that
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there is any reasonable way to regulate it at the at this
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stage. Lynne
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and I are partners at Baselayer Advisors, where
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through our experience and network with venture capital
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partners, we connect interested investors with unique
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opportunities in the space and advise startups on their growth
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and fundraising. Visit our website's advisory section to
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learn more. Yeah, I largely agree. Well, let's let's maybe
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unpack the the different layers to the to to the stack in your
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report, Liam, we can just kind of tackle them, you know, two or
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three at a time. But you start with electricity and models as
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you know as kind of the base, and you hit on some points which
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I'd like you to you know expand a little bit on. In the
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electricity stack, you get you highlight how we have
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bottlenecks. We've underinvested in the infrastructure. You know,
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there's a lot of efforts and capital right now in building
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out the the sudden burst of demand that we have for for
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electricity. Of course, all these data centers that are are
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all over the news. How do you view these bottlenecks, and how
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does that play into the next layer of the stack, which are
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the models themselves, which you argue are only going to get
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cheaper?
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Yeah, thinking about energy, I think is the biggest
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bottleneck because that's heavily regulated industry for
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the most part, and so with that, I think that the the grid has
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certain restrictions that are going to keep massive amounts
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of, you know, power plants, coal mines, etc. that are going to be
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held in the queue for a decently long period of time. The grid's
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been about flat for the past two decades in terms of the total
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energy that it generates, and so I think right now that's the
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constraint. Obviously, in the U.S. that's a big focus, and and
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more so moving faster in areas like China. But in the end of
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the day, there's only so much that they can do, just given its
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regulated industry, and that's even why we've seen everything
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that's become almost not not quite consensus, but like a lot
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of people think that they're going to be orbital data centers
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relatively soon because that can get be a way to get out of the
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permitting issues that come with respect to everything that's
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going on in the U.S. and energy creation, and so I think that
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energy is going to remain the bottleneck. But while we've seen
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actual supply chain issues with respect to compute itself as it
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relates to chips, just because TSMC and folks like them are
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pretty much the only folks with enough institutionalized
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knowledge to create fabs themselves. The chips still are
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getting 50 to 100x better per year, and that's obviously
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creating both the ability to issue tokens faster. So
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obviously, faster tokens means you can go back and forth with
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the AI a lot more, or or just it can work for longer tasks
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autonomously, while as just the ability for it to hold more
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memory and transfer that at a faster rate, and so energy is
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the the biggest bottleneck there. Nvidia and Sarah Bross
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and and some other companies are are doing great work on the
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compute side, but I think on the energy side, as as it relates to
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kind of opportunities that we've been talking about, as it
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relates to seeing. Soaking costs go up 25,000% over the past two
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years, and trying to invest across the landscape, there
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there are really interesting opportunities on the energy
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side. I think specifically with respect to storage and
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transmission, I think you know base power is an interesting
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company doing interesting things at the moment. Compute is
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obviously one that's done extremely well, and there will
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likely be new disruptions there just because of everything as it
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relates to the engineering of of these chips and ultimately more
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capacity coming online. I think that both of those are are
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investable opportunities, and and we can get into models next.
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But I don't necessarily think those are as differentiated, and
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you know we'll have a long enough time horizon to return
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substantial amounts of cash flow to their actual investors
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relative to the nodes of energy and compute.
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You know, kind of together with this backlash
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or fear about AI and the general public. There's the same thing
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about the construction of data centers and forms of
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electricity. What would you advise? I mean, it feels like
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there's been a slowdown even in traditional energy developed
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states like Texas. Abbott's taking kind of a step back on a
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data center development. How would you frame it to to help
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shift that narrative about how important electricity is, just
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overall, and the need for for these foundational systems.
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Yeah, I think a lot of people, at least in our circles,
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I would say, have seen the chart about how there are no energy
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poor and developed countries over time. Like it's directly
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correlated with the amount of energy that a country has to the
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amount of prosperity and GDP that it has, and so I think that
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it's it's obviously crucial. And if you want the your
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constituents to be well educated and for them to have better
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business opportunities and and better job opportunities
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domestically than elsewhere. Then I think that it that is
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something that every country municipality should be thinking
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about very critically. It's a tough one though because they're
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they're incredibly unpopular. I think this is going to be
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probably the biggest biggest sticking point in terms of AI at
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the next election coming up, because I think something like
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80% of people view data centers and AI as unfavorable. I think
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that a lot of that has to do, you know, there there are some
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noise pollution, but I think that most of them are built far
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away from actually where people live, but the real issue is they
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see data centers and AI as just one of the the physical
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manifestation of the emerging gap between the wages and the
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amount of capital that people on the lower shape of the K have
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versus the upper shape of the K. They they see you know Elon, Sam
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Altman, etc. All these very rich people who you know have a ton
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of money, and they just hear on the news that it's because you
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know they're stealing from the country, and and they shouldn't
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have that, and it should be redistributed. And then they
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also hear that AI is going to change their jobs, which I think
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is another false narrative. And because of those two are, I
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think, the the most popular narratives out there. It's going
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to be difficult to ultimately get the people to really change
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how they use it, unless or how they view AI, unless they
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actually see it in the benefits themselves, which they they
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largely haven't yet, outside of just having a quicker, faster
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Google. And ultimately, the the politicians probably want to say
455
00:28:51,670 --> 00:28:55,510
whatever the people actually want to get elected. And so, I
456
00:28:55,660 --> 00:28:57,730
think it's going to be a challenging topic over over
457
00:28:57,820 --> 00:29:00,870
time. And I don't necessarily have this silver bullet, whether
458
00:29:00,930 --> 00:29:05,190
it's narrative on how to shape this better, what what do you
459
00:29:05,280 --> 00:29:05,820
guys think?
460
00:29:06,180 --> 00:29:08,520
I'm not sure either on where this goes, Liam. All I
461
00:29:08,670 --> 00:29:13,020
know is that the negative narrative around it will
462
00:29:13,140 --> 00:29:18,120
continue. So I think that that's just not going away. You know,
463
00:29:18,210 --> 00:29:24,740
maybe it adapts. We saw Bitcoin Bitcoin mining infrastructure
464
00:29:24,800 --> 00:29:28,190
adapt, you know, in the last 10 years, and plugged into more,
465
00:29:28,880 --> 00:29:32,690
you know, rural energy sources, and it's gotten a little bit
466
00:29:32,750 --> 00:29:38,150
more renewable energy focused. So it's, you know, I think
467
00:29:38,240 --> 00:29:41,890
ultimately it's kind of one of those things where the market
468
00:29:42,010 --> 00:29:47,050
will work it out as as it as it should, you know. But I do think
469
00:29:47,350 --> 00:29:50,830
the regulatory headwinds are not going away anytime soon.
470
00:29:51,820 --> 00:29:53,590
Yeah, I agree with Israel. I think that
471
00:29:53,710 --> 00:29:56,890
Bitcoin mining has given a great example of how a narrative can
472
00:29:57,010 --> 00:30:00,390
shift relatively quickly from some. Something that was
473
00:30:00,480 --> 00:30:03,540
misunderstood and misinterpreted to something that now is you
474
00:30:03,600 --> 00:30:07,050
know we understand that it can actually improve the pace of
475
00:30:07,140 --> 00:30:10,950
renewable development in electricity. I think I'm hoping
476
00:30:11,070 --> 00:30:15,000
that after the midterm U.S. elections that the narrative
477
00:30:15,030 --> 00:30:17,310
will shift a little bit. That'll it'll take the pressure off at
478
00:30:17,340 --> 00:30:20,930
least for a year and a half, and then. But I'm also wondering if
479
00:30:20,960 --> 00:30:24,320
this just gives opportunities. I mean, our podcast tends to look
480
00:30:24,500 --> 00:30:27,470
at these developments on more of a global scale than just U.S.
481
00:30:27,530 --> 00:30:30,650
centric. So, you know, perhaps there are opportunities in other
482
00:30:30,740 --> 00:30:34,520
regions and other areas to help do some of the AI build out that
483
00:30:34,580 --> 00:30:37,910
would increase the opportunities in those emerging economies
484
00:30:38,180 --> 00:30:41,890
where they do need more electricity. They need more to
485
00:30:42,130 --> 00:30:45,370
to improve the prosperity and the GDP. That this could be a
486
00:30:45,460 --> 00:30:47,590
source of opportunity for other regions.
487
00:30:48,100 --> 00:30:50,590
Yeah, I think that's fantastic point. Very well said,
488
00:30:50,800 --> 00:30:55,750
and something that you know as there are differing opinions,
489
00:30:55,900 --> 00:30:59,740
whether it's the U.S. versus China, and how those are so
490
00:30:59,860 --> 00:31:03,570
diametrically opposed with the public perception of AI. I think
491
00:31:03,690 --> 00:31:07,170
that outside of the U.S. there are a ton of countries. I think
492
00:31:07,260 --> 00:31:10,350
South Korea just actually said that they're going to allow for
493
00:31:10,860 --> 00:31:14,610
something like $8 billion worth of free AI for their people too.
494
00:31:15,180 --> 00:31:17,790
I think that that's a an incredibly smart strategy in
495
00:31:17,850 --> 00:31:22,760
order to you know have your you know citizens be able to retrain
496
00:31:22,820 --> 00:31:26,030
themselves in order to bring your country further ahead. I
497
00:31:26,090 --> 00:31:28,880
think that they should be teaching how to use these types
498
00:31:28,970 --> 00:31:32,960
of tools in schools, and and that will help improve
499
00:31:33,050 --> 00:31:36,380
perception, and then also provide massive economic
500
00:31:36,530 --> 00:31:37,670
opportunity, as you mentioned.
501
00:31:38,630 --> 00:31:41,230
Yeah, and and I mean on that point worth highlighting as
502
00:31:41,410 --> 00:31:44,230
well, and I'm not too familiar with the numbers, but I did see
503
00:31:44,440 --> 00:31:48,610
recently El Salvador that they've been implementing AI at
504
00:31:48,670 --> 00:31:52,630
the educational level at a very early stage, I believe. And
505
00:31:53,710 --> 00:31:56,290
again, I'm not familiar with the stats, but I think they ranked
506
00:31:57,010 --> 00:32:00,690
pretty high in recent testing of their young kids. So it's having
507
00:32:01,290 --> 00:32:04,680
clearly big benefits to those who are leaning into this
508
00:32:04,770 --> 00:32:08,250
technology. I mean, ultimately, the U.S. is the powerhouse
509
00:32:08,490 --> 00:32:12,030
economically that it is today because it, for the most part,
510
00:32:12,120 --> 00:32:15,180
embraced the internet early on, and so as a consequence, you
511
00:32:15,180 --> 00:32:18,360
know, now you have some of the largest companies and all you
512
00:32:18,360 --> 00:32:21,680
know multiple trillion dollar companies that are, you know,
513
00:32:21,770 --> 00:32:25,610
that were built from the Internet Protocol, and the U.S.
514
00:32:25,670 --> 00:32:28,460
is has of course reaped massive benefits from that. So I think,
515
00:32:29,270 --> 00:32:31,490
you know, those those who lean into this will certainly
516
00:32:31,550 --> 00:32:36,440
benefit. But well, maybe getting back to the to the stack itself,
517
00:32:36,560 --> 00:32:39,140
Liam. So we went through the electricity component, the
518
00:32:39,650 --> 00:32:43,270
models themselves, as I understand it, you know. Correct
519
00:32:43,300 --> 00:32:45,820
me if I'm wrong, but you you view these as a little more
520
00:32:45,940 --> 00:32:50,110
fluid. They'll kind of you know they'll come and go likely for
521
00:32:50,170 --> 00:32:53,020
the foreseeable future, both closed source and open source.
522
00:32:53,650 --> 00:32:57,970
Then you get into a layer of the stack called the harness, which
523
00:32:58,960 --> 00:33:01,740
is, in other words, perhaps you know the infrastructure layer.
524
00:33:01,950 --> 00:33:05,970
Let's say the tools and and what you actually need to use some of
525
00:33:06,030 --> 00:33:09,420
these models. And you've you view this as one of the most
526
00:33:09,900 --> 00:33:13,620
maybe sticky or investable layers. Again, correct me if I'm
527
00:33:13,680 --> 00:33:17,130
wrong on on any of this. And then we you know you kind of get
528
00:33:17,190 --> 00:33:20,630
into how the agents interact. You know on top of the models
529
00:33:20,750 --> 00:33:24,290
and and this harness layer, is that more or less the thesis, or
530
00:33:24,500 --> 00:33:25,850
what? What can you add to that?
531
00:33:25,970 --> 00:33:28,850
Yeah, for sure. There, with respect to the models
532
00:33:28,910 --> 00:33:32,150
themselves, they're obviously those have raised the most
533
00:33:32,180 --> 00:33:35,810
amount of capital to date, and I think that they're they get a
534
00:33:35,840 --> 00:33:40,280
lot of noise because they that's kind of what the back end is
535
00:33:40,340 --> 00:33:44,500
that powers all of this, and some of them have also like
536
00:33:44,590 --> 00:33:51,040
obviously cloud code and and codecs are harnesses for the
537
00:33:51,040 --> 00:33:55,780
anthropics and open AIs of the world who offer just a great
538
00:33:56,140 --> 00:34:00,130
user experience within their tools. But ultimately, I think
539
00:34:00,220 --> 00:34:04,230
that a lot of the the models are a little bit unsustainable
540
00:34:04,350 --> 00:34:07,800
because of the economics that go into it, and what I mean by that
541
00:34:07,800 --> 00:34:12,180
is, if you're paying for a $200 cloud subscription right now, it
542
00:34:12,180 --> 00:34:15,270
actually costs them. If you're using it into the fullest
543
00:34:15,360 --> 00:34:20,190
extent, it's costing them about 8000 to $9,000 a month, and so
544
00:34:20,400 --> 00:34:23,390
that's a massively negative margin. But why do they do that?
545
00:34:23,450 --> 00:34:28,700
It's because they are taking all of the data about how consumers
546
00:34:29,000 --> 00:34:32,990
and businesses use their information, and they will then
547
00:34:33,350 --> 00:34:37,070
have all of that data that's readily available to train their
548
00:34:37,130 --> 00:34:41,380
next model or use it in order to go out into a different
549
00:34:41,440 --> 00:34:45,610
horizontal verticals, and so like folks like Figma have come
550
00:34:45,790 --> 00:34:49,300
on and been partners with them, and use Claude as a backend, and
551
00:34:49,330 --> 00:34:54,280
then Claude goes and does Claude design, and so I think with that
552
00:34:54,340 --> 00:34:58,090
it's it's interesting to do because they have the API that
553
00:34:58,150 --> 00:35:02,430
they can train off of that. Has like 90% margins, but they lose
554
00:35:02,490 --> 00:35:08,430
a lot of the the actual money on the subscription, and then at
555
00:35:08,460 --> 00:35:11,580
the same time they have to put hundreds of millions of dollars
556
00:35:11,790 --> 00:35:17,310
into training runs, and then that is extremely like
557
00:35:17,460 --> 00:35:21,680
unsustainable. If there can be other models out there that can
558
00:35:21,740 --> 00:35:25,790
just take all of the information that you get from a training run
559
00:35:26,210 --> 00:35:30,230
and essentially use that to train their models themselves
560
00:35:30,350 --> 00:35:34,610
too, or a 10th or you know 1/20 of the cost of doing it
561
00:35:34,610 --> 00:35:37,850
themselves. And so it's it's widely rumored right now that
562
00:35:37,850 --> 00:35:40,610
many of those models are actually just not releasing
563
00:35:40,760 --> 00:35:44,290
their latest ones to the public, and folks like Anthropic are
564
00:35:44,350 --> 00:35:48,070
actually going more into drug discovery. And so, I think that
565
00:35:48,250 --> 00:35:52,450
while consumer and business serving of you know creating
566
00:35:52,540 --> 00:35:55,210
models and offering it to the public and having them pay for
567
00:35:55,300 --> 00:35:59,200
it is something that's not necessarily going to be a great
568
00:35:59,260 --> 00:36:01,890
long term business model because of the cost of distillation,
569
00:36:01,980 --> 00:36:05,370
don't are significantly lower than the cost of training models
570
00:36:05,550 --> 00:36:09,930
yourself. There, that could be a tough business model. So I think
571
00:36:10,380 --> 00:36:13,770
I wouldn't be super excited about owning Anthropic or or
572
00:36:13,920 --> 00:36:18,630
OpenAI for that type of consumer-facing business. The
573
00:36:18,780 --> 00:36:21,860
harnesses and agents are what's actually the most valuable part?
574
00:36:22,460 --> 00:36:26,720
It's the if you've used Hermes or Open Claw or or Open Code,
575
00:36:28,160 --> 00:36:32,360
they are the interface that you use for any sort of model in the
576
00:36:32,360 --> 00:36:37,070
backend, either one that you host yourself or an API that can
577
00:36:37,130 --> 00:36:40,870
be switched between them, and that's really valuable because
578
00:36:41,200 --> 00:36:44,680
it actually is the interface, and it can significantly
579
00:36:44,830 --> 00:36:48,640
decrease the amount of tokens or increase if you have the wrong
580
00:36:48,760 --> 00:36:52,120
harness and the wrong tools that are associated with it. Whether
581
00:36:52,210 --> 00:36:59,020
it's connecting it to your Excel, PowerPoint, email, all of
582
00:36:59,020 --> 00:37:04,560
the other tools that you likely have is is an average user, it's
583
00:37:04,770 --> 00:37:08,640
able to call them and and get hooked up and do the essentially
584
00:37:08,880 --> 00:37:13,110
operating system and interface for you to work with essentially
585
00:37:13,560 --> 00:37:16,170
all of your intelligence, and that's where you can actually
586
00:37:16,260 --> 00:37:19,350
spawn agents and have them be focused on different tasks like
587
00:37:19,860 --> 00:37:24,050
design versus writing copy versus financial modeling and
588
00:37:24,080 --> 00:37:28,160
Excel, and I think that's where a lot of the durable value
589
00:37:28,280 --> 00:37:31,490
lives. Although many of those are still being given away for
590
00:37:31,610 --> 00:37:35,330
free, just because the open source community is so strong
591
00:37:35,450 --> 00:37:38,660
and and they want to really look for bugs, whether it's Open Claw
592
00:37:38,750 --> 00:37:43,090
or Hermes or or whatever it is out there, there are additional
593
00:37:43,150 --> 00:37:47,560
hosting costs that you can benefit from for for those types
594
00:37:47,650 --> 00:37:53,050
of harnesses. But I think that those are the kind of main areas
595
00:37:53,170 --> 00:37:55,840
that that I'm really interested in on my side.
596
00:37:55,930 --> 00:37:58,180
I think that's a great way to kind of move on to
597
00:37:58,210 --> 00:38:01,830
the next level of the stack, which I'm going to put these
598
00:38:01,920 --> 00:38:04,560
together the way Israel kind of combines some of the
599
00:38:04,560 --> 00:38:08,160
infrastructure part of it, but you know the the next layer of
600
00:38:08,220 --> 00:38:10,830
the stack in your report are the agents. And I first of all I
601
00:38:10,890 --> 00:38:13,290
just want to say we'll include a link to the report and to the
602
00:38:13,320 --> 00:38:16,740
website in here. I'd encourage everyone to really take a deep
603
00:38:16,800 --> 00:38:20,100
dive into this because it's fascinating. But to the next the
604
00:38:20,310 --> 00:38:23,180
next layer would be the agents themselves, and they're the the
605
00:38:25,220 --> 00:38:29,870
artificial intelligence that has a goal or has a task or
606
00:38:29,900 --> 00:38:32,960
repetitive task that is out there actually creating the
607
00:38:32,990 --> 00:38:35,630
productivity of it. And associated with that is
608
00:38:35,630 --> 00:38:40,040
identity. So then there becomes the question of, you know, is an
609
00:38:40,220 --> 00:38:45,040
individual AI or an agent has have has a unique identity, or
610
00:38:45,100 --> 00:38:48,190
how do you how do you know which agent is doing which work? And
611
00:38:48,220 --> 00:38:50,770
then on top of that is the coordination among agents. So,
612
00:38:51,370 --> 00:38:54,790
can you can you kind of take a look at that those three layers
613
00:38:54,850 --> 00:38:57,520
of the stack, how they interact and how they evolve one from the
614
00:38:57,640 --> 00:39:01,620
other, from agent to identity to coordination, and is this kind
615
00:39:01,650 --> 00:39:04,290
of the the fear factor that we're seeing right now, or how
616
00:39:04,350 --> 00:39:07,290
do we? I mean, but also the productivity. Like, how much has
617
00:39:07,380 --> 00:39:11,190
that is that unleashing productivity today, and what is
618
00:39:11,280 --> 00:39:13,770
the potential for that going forward? Because I really see
619
00:39:13,890 --> 00:39:17,610
this as kind of the the the the kind of goldmine and how
620
00:39:18,390 --> 00:39:21,200
businesses can unlock potential and individuals can unlock
621
00:39:21,260 --> 00:39:24,860
potential by by utilizing these this agent stack.
622
00:39:26,299 --> 00:39:30,199
Yeah, for sure. I think that right now agents it depends
623
00:39:30,259 --> 00:39:32,749
on how you interact with them, but a lot of them are just
624
00:39:32,809 --> 00:39:37,039
internal. You speak with them on your computer, and they go do a
625
00:39:37,129 --> 00:39:40,449
task. They start to get really interesting when you embed them
626
00:39:40,569 --> 00:39:44,259
with either your company workflows and the agents that
627
00:39:44,379 --> 00:39:48,099
you're interacting with are interacting with other agents
628
00:39:48,129 --> 00:39:51,279
that you're that are created by other folks at your company, or
629
00:39:51,639 --> 00:39:55,749
just interacting with any other agent on the internet for a
630
00:39:56,469 --> 00:40:01,769
shared group of tasks. And so, one of the. Ones was was lobster
631
00:40:02,039 --> 00:40:05,549
claw or something like that about them all getting
632
00:40:05,639 --> 00:40:08,729
identities and and posting on their own Facebook or or
633
00:40:08,819 --> 00:40:13,469
whatever but I think that a lot more of it will be in the future
634
00:40:14,069 --> 00:40:20,159
folks who host a certain amount of compute and they can offer
635
00:40:20,459 --> 00:40:24,709
their agents and to go out and do things in the real world, in
636
00:40:24,829 --> 00:40:27,319
order, and that could be anything from finding
637
00:40:27,529 --> 00:40:31,129
differentiated research that isn't just available and and
638
00:40:31,219 --> 00:40:34,789
paying for that through micro payments, or you know whether
639
00:40:34,999 --> 00:40:40,579
it's being a world class copywriter for advertising and
640
00:40:41,509 --> 00:40:44,229
getting hired by other folks out there because they have a
641
00:40:44,619 --> 00:40:48,969
reputation for doing that at a very high degree. I think that
642
00:40:48,969 --> 00:40:51,669
that's where it starts to get interesting as it relates to
643
00:40:51,909 --> 00:40:56,049
identity and having things like like Nostr on the back end that
644
00:40:56,109 --> 00:41:01,469
will associate end pubs with different agents out there, and
645
00:41:01,589 --> 00:41:05,429
giving them a list, like essentially webs of trust, to be
646
00:41:05,579 --> 00:41:07,769
able to coordinate with different agents. Whether it's
647
00:41:07,949 --> 00:41:12,719
something like Nostr or other protocols out there, like to
648
00:41:12,779 --> 00:41:13,049
date.
649
00:41:13,199 --> 00:41:15,779
Excuse me, Liam. Can you just explain to our
650
00:41:15,839 --> 00:41:18,209
audience that may not be familiar with Nostr what that
651
00:41:18,509 --> 00:41:18,599
is?
652
00:41:18,630 --> 00:41:21,740
Yeah, for sure. It's a it's a coordination system for
653
00:41:24,050 --> 00:41:26,660
there. There's essentially public and private keys, similar
654
00:41:26,780 --> 00:41:29,810
to what Bitcoin has. You know, your private key is your
655
00:41:30,320 --> 00:41:35,210
address. You're proving that you either have the Bitcoin or on
656
00:41:35,240 --> 00:41:39,290
the Nostra side, proving that you own the identity, and then
657
00:41:39,380 --> 00:41:44,110
the public address is essentially your name or a
658
00:41:44,200 --> 00:41:47,020
string of characters that can be associated with the name, and
659
00:41:47,050 --> 00:41:50,260
that can be the agent. So it's tied to the activity that you
660
00:41:50,320 --> 00:41:53,620
do. Or on the Bitcoin side, it's an address that you can use to
661
00:41:54,460 --> 00:42:00,430
receive Bitcoin. And so I think that similarly, like tools like
662
00:42:00,580 --> 00:42:05,550
Jack at Square have created with Buzz, it's allowed for different
663
00:42:05,940 --> 00:42:10,680
agents to interact with your entire team, and so that uses
664
00:42:10,800 --> 00:42:15,330
Nostra as the backend, and it can include different folks who
665
00:42:15,630 --> 00:42:20,400
join your channel in Buzz, and one can be focused on marketing,
666
00:42:20,550 --> 00:42:23,480
one could be focused on sales and go-to-market, or
667
00:42:24,860 --> 00:42:28,880
engineering, product, security, and they can all have different
668
00:42:29,000 --> 00:42:31,700
identities and be different, attached with different things
669
00:42:31,790 --> 00:42:35,270
over time. Similarly, in the real world, whether it's
670
00:42:35,900 --> 00:42:40,720
actually you know paying for different security reviews by
671
00:42:40,840 --> 00:42:44,530
very capable agents who have built up a corpus of knowledge
672
00:42:44,650 --> 00:42:48,190
over time and have different efficiencies as it relates to
673
00:42:48,280 --> 00:42:52,570
skills and and knowledge. I think that similarly, there will
674
00:42:52,600 --> 00:42:58,030
be a lot of value transferred by taking an identity, building up
675
00:42:58,270 --> 00:43:03,510
a history of work that it's done over time, and then using that
676
00:43:03,570 --> 00:43:07,740
to coordinate what you should, what you're willing to pay for
677
00:43:07,860 --> 00:43:09,120
for different future tasks.
678
00:43:09,269 --> 00:43:13,139
Yeah, and the productivity unlock is is going
679
00:43:13,199 --> 00:43:17,399
to be. It's it's still something I have a hard time grasping
680
00:43:17,849 --> 00:43:20,639
because I'm just seeing it in real time, and and it's it's
681
00:43:20,669 --> 00:43:24,259
just absolutely exponential. I mean, a bit of a side here. I
682
00:43:24,319 --> 00:43:28,279
have a I have a packaging business for that that I work on
683
00:43:28,339 --> 00:43:31,789
for restaurants, small coffee shops, those kind of things. And
684
00:43:31,909 --> 00:43:35,359
we're just starting to play around with some of these agent
685
00:43:35,389 --> 00:43:39,259
tools. So specifically Grokbot, and there's a few right. And to
686
00:43:39,439 --> 00:43:43,719
your point of these identities, I mean, you you start to see the
687
00:43:43,779 --> 00:43:47,889
the the real impact of. So we have you know a sales agent, we
688
00:43:48,039 --> 00:43:51,729
have a design agent, we have an accounting agent that's starting
689
00:43:51,819 --> 00:43:56,169
to do a lot of this backend internal work for us. I mean, a
690
00:43:56,229 --> 00:43:58,809
lot of people make parallels to just thinking of them as
691
00:43:58,929 --> 00:44:04,949
coworkers, and in practice, it's true, right? So you you kind of
692
00:44:04,949 --> 00:44:08,249
extrapolate that to the actual changes in the economy and
693
00:44:08,279 --> 00:44:10,979
productivity gains, and and it's it's absolutely mind blowing.
694
00:44:11,039 --> 00:44:13,199
But anyways, I don't mean to deviate.
695
00:44:13,290 --> 00:44:16,260
I was just curious: have you guys seen the Hugging Face?
696
00:44:16,410 --> 00:44:19,590
Just speaking because we came out with it earlier, the the
697
00:44:19,860 --> 00:44:23,540
happy robot thing, the the little ducks that came out last
698
00:44:23,570 --> 00:44:23,750
week.
699
00:44:24,560 --> 00:44:25,250
I have not, Lynne.
700
00:44:25,400 --> 00:44:25,790
Have not.
701
00:44:26,899 --> 00:44:30,289
Okay. Well, it's it's actually funny because you know,
702
00:44:31,159 --> 00:44:33,979
Hugging Face, not like a Bitcoin company or anything, but they
703
00:44:34,069 --> 00:44:37,909
came out with Nostr as a protocol. They they created
704
00:44:37,939 --> 00:44:41,799
these essentially robots that are shaped like docks that are
705
00:44:42,489 --> 00:44:45,099
entirely open source, and you can put your own models in them
706
00:44:45,549 --> 00:44:48,579
for extremely low cost, and they will recursively learn over
707
00:44:48,669 --> 00:44:53,259
time. And they use Nostra as a backend to coordinate the
708
00:44:53,469 --> 00:44:56,289
identity of all the different robots, and then interact with
709
00:44:56,829 --> 00:44:59,949
each other in the real world. And so, I think that that.
710
00:45:00,840 --> 00:45:03,300
It's it's obviously very early, but it's just a sign of
711
00:45:03,390 --> 00:45:06,660
what's to come as it relates to not just you know working with
712
00:45:06,810 --> 00:45:10,920
agents on the computer, but how it actually identifies ties to
713
00:45:11,160 --> 00:45:14,430
actual robots, whether it relates to you know them having
714
00:45:14,940 --> 00:45:17,940
being in Amazon facilities or actually out in the real world
715
00:45:18,090 --> 00:45:21,620
in order to understand where they are with certain tasks and
716
00:45:22,010 --> 00:45:25,400
being able to coordinate exactly who they are over time, too. I
717
00:45:25,460 --> 00:45:28,850
think that it's it's a little bit early, but it's fascinating
718
00:45:29,060 --> 00:45:32,090
to if you extrapolate that out a few years, what what it really
719
00:45:32,180 --> 00:45:35,600
means. Yeah, to your point, I mean this identity and and
720
00:45:35,690 --> 00:45:38,960
coordination component. I mean once that that just takes us
721
00:45:39,020 --> 00:45:41,680
into the actual agent to agent economy, right? Which we're
722
00:45:41,860 --> 00:45:45,580
still at the very, very, very early stages of. And once that
723
00:45:45,670 --> 00:45:48,280
starts to take off, then I mean, yeah, we we move from it just
724
00:45:48,280 --> 00:45:52,810
being, I guess, this internal tool that works for us as humans
725
00:45:52,900 --> 00:45:57,040
and coordinates our efforts to to really handing off complete
726
00:45:57,130 --> 00:46:01,590
tasks and and agents kind of you know really having this value
727
00:46:01,650 --> 00:46:05,490
transfer and settlement and and trading going on between them,
728
00:46:05,610 --> 00:46:10,710
which is just a whole another layer to it. But Lynne, sorry, I
729
00:46:10,770 --> 00:46:12,900
think you were going to add something as well.
730
00:46:12,990 --> 00:46:15,660
This is something that, frankly, Israel
731
00:46:15,660 --> 00:46:17,610
and I have been talking about for quite a while. Is just
732
00:46:17,700 --> 00:46:22,370
opportunities with Bitcoin and and the fact that maybe the
733
00:46:22,490 --> 00:46:26,240
agentic economy and agents themselves could be that unlock
734
00:46:26,390 --> 00:46:29,150
for medium of exchange that maybe we've been looking at the
735
00:46:29,270 --> 00:46:33,740
wrong place instead of having people in evolved countries all
736
00:46:33,740 --> 00:46:36,860
of a sudden switch their payment system to Bitcoin maybe it's not
737
00:46:37,040 --> 00:46:41,560
people maybe it's agents of if you can dive deeper into the
738
00:46:41,650 --> 00:46:44,860
whole value transfer layer of your stack and settlements and
739
00:46:44,890 --> 00:46:45,700
how that ties in,
740
00:46:45,850 --> 00:46:48,190
yeah, for sure. I think that taking a step back too,
741
00:46:48,430 --> 00:46:52,300
where there are two aspects to this too. It's both as this
742
00:46:52,510 --> 00:46:56,140
really unfolds, are you going to save your money because there's
743
00:46:56,170 --> 00:46:59,740
going to be so much deflation out there as it relates to just
744
00:46:59,740 --> 00:47:02,610
the amount of productivity that's coming out as it relates
745
00:47:02,700 --> 00:47:05,040
to every part of the stack getting better and better over
746
00:47:05,100 --> 00:47:09,570
time, and so it really is important to look hard at scarce
747
00:47:09,720 --> 00:47:13,680
assets, whether it's gold or Bitcoin, which is probably my my
748
00:47:13,800 --> 00:47:16,020
personal favorite. But I think that both will do well over
749
00:47:16,110 --> 00:47:21,440
time, and and if you aren't really allocating to scarce
750
00:47:21,650 --> 00:47:24,230
assets, then you're going to see a lot of the gains inflated
751
00:47:24,260 --> 00:47:28,970
away. When looking back at the initial industrial revolution,
752
00:47:29,660 --> 00:47:32,720
while there was so much created and with respect to all the
753
00:47:32,750 --> 00:47:36,440
railroads and a lot of innovations with electricity and
754
00:47:37,670 --> 00:47:40,450
steel, one of the best investments was just to hold
755
00:47:40,540 --> 00:47:43,660
money because it was backed by gold, and there was actually
756
00:47:43,810 --> 00:47:46,660
real deflation there, and so you saw a lot of your purchasing
757
00:47:46,720 --> 00:47:49,720
power increase over time, and didn't have to necessarily pick
758
00:47:49,930 --> 00:47:52,960
what was going to be the best performing asset versus like one
759
00:47:53,050 --> 00:47:57,760
steel company, railroad company, etc. And so that's that's one
760
00:47:57,790 --> 00:48:02,730
piece, but the other one is in a world where you know everything
761
00:48:02,760 --> 00:48:07,380
is kind of constrained by energy and compute. It's almost going
762
00:48:07,410 --> 00:48:12,780
to move towards electricity and how you meter that in terms of
763
00:48:13,170 --> 00:48:20,190
paying for it over time. And so there will be essentially value
764
00:48:20,280 --> 00:48:25,220
tasks that are so small but so critical that will be too small
765
00:48:25,340 --> 00:48:29,480
for credit cards to pay, and so during that it will be crucial
766
00:48:29,570 --> 00:48:34,280
to have internet-native money and money that's native to the
767
00:48:34,430 --> 00:48:38,720
internet. Stablecoins, I think, will play a role there to start,
768
00:48:38,810 --> 00:48:41,890
just because some people are familiar with the dollar and the
769
00:48:42,010 --> 00:48:45,010
network effects that it has, especially offboarding and
770
00:48:45,100 --> 00:48:49,300
onboarding in the U.S. to to different banks. But the world
771
00:48:49,360 --> 00:48:53,530
isn't just U.S. centric. It needs money that's neutral. It
772
00:48:53,950 --> 00:48:57,010
needs money that will actually keep its value over time. And so
773
00:48:57,100 --> 00:49:00,610
I think that that will mostly move towards Bitcoin over time.
774
00:49:01,570 --> 00:49:05,670
There are obviously challenges with really bootstrapping it
775
00:49:05,730 --> 00:49:09,870
right now, and because not not many people unfortunately use it
776
00:49:09,930 --> 00:49:14,040
as payment on a day to day basis, and especially not with
777
00:49:14,190 --> 00:49:18,750
instant settlement. Obviously, Bitcoin takes whatever 10 ish
778
00:49:18,930 --> 00:49:23,090
minutes or so, which may or may not be enough for certain
779
00:49:23,180 --> 00:49:26,930
activities as as AI really accelerates, but I think that
780
00:49:26,960 --> 00:49:30,800
there are a bunch of innovative L 2s out there, and and it's
781
00:49:30,860 --> 00:49:33,530
still honestly pretty early days for those. But whether it's
782
00:49:33,830 --> 00:49:37,970
Lightning, Arc, Spark, and the connectivity between all of
783
00:49:38,060 --> 00:49:40,870
them, I think that that's ultimately the direction that
784
00:49:41,020 --> 00:49:44,830
we're going to move with respect to using micro payments over
785
00:49:44,890 --> 00:49:48,850
time, both because it's it can't be seized, and you know most
786
00:49:48,910 --> 00:49:51,190
people just don't live in the U.S. and don't really have a lot
787
00:49:51,220 --> 00:49:52,900
of use for dollars on a day-to-day basis.
788
00:49:53,199 --> 00:49:56,349
I want to take a quick pause here and and just frame
789
00:49:56,469 --> 00:50:01,409
something because I notice and my suspicion is. A lot of people
790
00:50:02,039 --> 00:50:05,249
sometimes can get confused because we hear inflation and
791
00:50:05,309 --> 00:50:08,639
deflation used in the same, you know, for example, research
792
00:50:08,789 --> 00:50:13,289
papers or arguments, and it can be a bit confusing, right? And
793
00:50:13,409 --> 00:50:17,099
and it's mostly due to the fact that these are kind of competing
794
00:50:17,189 --> 00:50:21,139
forces that we we have. You have deflation as it relates to
795
00:50:21,199 --> 00:50:25,639
technology and inflation as it relates to money. Can you can
796
00:50:25,669 --> 00:50:28,939
you help frame that for for someone who's listening and and
797
00:50:28,999 --> 00:50:32,149
might sometimes get a little bit confused between the words
798
00:50:32,209 --> 00:50:33,259
inflation and deflation?
799
00:50:33,410 --> 00:50:37,520
Yeah, for sure. Whenever I hear about that, I think about
800
00:50:38,030 --> 00:50:40,810
have you guys seen the chart from like the change in prices
801
00:50:40,870 --> 00:50:46,030
since the year 2000, and it's like TVs, iPhones, etc. all
802
00:50:46,330 --> 00:50:50,590
deflating really fast. And then it's on the top side, above
803
00:50:50,680 --> 00:50:54,850
average CPI. It's like healthcare services, education,
804
00:50:55,330 --> 00:51:00,630
etc. And a lot of that is, you know, the the bottom half of the
805
00:51:00,870 --> 00:51:06,540
curve is due to innovation technologically, which can bring
806
00:51:06,600 --> 00:51:10,620
down the cost of the cost of products and services, and and
807
00:51:10,620 --> 00:51:13,980
that's why TVs, etc. get cheaper over time, and that's the
808
00:51:14,130 --> 00:51:17,190
natural state of the economy. People will always get more
809
00:51:17,250 --> 00:51:21,020
productive; otherwise, they're going to get competed out of
810
00:51:21,080 --> 00:51:26,870
their business and lose their job, etc. The so deflation is
811
00:51:26,930 --> 00:51:30,860
the natural state, but there is monetary inflation that is
812
00:51:31,010 --> 00:51:34,460
increasing anywhere from I think it's average at 7% a year over
813
00:51:34,580 --> 00:51:38,630
the past 100 years, and going to likely accelerate further from
814
00:51:38,690 --> 00:51:43,060
here as our debt and deficits start to get to almost untenable
815
00:51:43,960 --> 00:51:49,000
levels, and so that's monetary inflation is is a is a tough
816
00:51:49,180 --> 00:51:53,140
thing for many people because wages and everything that you
817
00:51:53,320 --> 00:51:55,870
own in terms of asset prices doesn't necessarily keep up as
818
00:51:55,930 --> 00:52:00,730
fast. And then on top of that, we see industries that have you
819
00:52:00,760 --> 00:52:04,530
know you can say highly regulated is a friendly way, and
820
00:52:05,040 --> 00:52:09,000
have regulatory capture as a the more pessimistic view. But
821
00:52:09,000 --> 00:52:12,210
everything from healthcare services, education, where
822
00:52:12,270 --> 00:52:15,180
there's essentially government monopolies on how they work,
823
00:52:15,630 --> 00:52:19,230
those tend to see a lot less innovation and thus deflation in
824
00:52:19,500 --> 00:52:23,510
prices, or they are just tied to incentives where they actually
825
00:52:23,600 --> 00:52:26,120
increase prices over time because that's the only way for
826
00:52:26,180 --> 00:52:30,320
those companies to make more profit. And so I think that as
827
00:52:30,500 --> 00:52:33,200
as you look out into the future and try to extrapolate a little
828
00:52:33,230 --> 00:52:38,540
bit more, there will continue to be a lot of technological
829
00:52:38,630 --> 00:52:43,390
deflation as it relates to just industries that are closer to
830
00:52:43,660 --> 00:52:47,980
completely free and have less regulation on them, whereas
831
00:52:48,130 --> 00:52:51,820
those that are heavily regulated will probably be a little bit
832
00:52:51,880 --> 00:52:56,020
closer to the actual monetary inflation rate, which which sees
833
00:52:56,200 --> 00:52:57,820
purchasing power decline over time.
834
00:52:57,940 --> 00:53:00,750
When deflation hits, not just the core
835
00:53:00,960 --> 00:53:04,710
technologies like a television or a component, but hits
836
00:53:04,920 --> 00:53:07,680
traditional industries. How how does how do you see that
837
00:53:07,740 --> 00:53:08,940
impacting the economy?
838
00:53:09,209 --> 00:53:12,629
Yeah, I think that it's um you probably feel it in in the
839
00:53:12,989 --> 00:53:17,069
day to day work that you do too. Like the the costs of producing
840
00:53:17,159 --> 00:53:21,079
podcasts are are going down because um you know the cost of
841
00:53:21,499 --> 00:53:23,929
getting everything, like a microphone, or and all the
842
00:53:23,929 --> 00:53:29,059
softwares. There are a lot better technological advances as
843
00:53:29,119 --> 00:53:33,049
relates to software engineering and hardware manufacturing. I
844
00:53:33,139 --> 00:53:38,569
think that yeah, like looking at like a restaurant, there's going
845
00:53:38,569 --> 00:53:44,259
to be a lot better ways to for the food service distributors to
846
00:53:44,469 --> 00:53:48,249
actually understand where the inks are in their supply chains,
847
00:53:48,369 --> 00:53:51,909
where there is inventory over time, and really drive down that
848
00:53:51,969 --> 00:53:56,979
cost over time. You know, AI will allow for autonomous truck
849
00:53:57,039 --> 00:54:01,409
drivers that so that will decline the amount of people who
850
00:54:01,529 --> 00:54:04,709
actually have to drive the truck from a place A to B and
851
00:54:05,489 --> 00:54:08,519
necessarily drive down the costs there. I think that there are
852
00:54:08,609 --> 00:54:12,179
just so many different ways that it's going to accelerate things
853
00:54:12,299 --> 00:54:17,849
and it's going to touch every part of our economy, especially
854
00:54:17,909 --> 00:54:21,409
every part that uses any sort of intelligence on a day-to-day
855
00:54:21,529 --> 00:54:24,709
basis. If you're not really just going through the motions, then
856
00:54:24,979 --> 00:54:28,009
it's going to drive down costs significantly. And even if you
857
00:54:28,129 --> 00:54:30,679
are just going through the motions, it will allow you to
858
00:54:31,909 --> 00:54:37,009
really think about new ways and to do the job more efficiently,
859
00:54:37,189 --> 00:54:41,229
implement new technologies, etc. I'm pretty bullish on just the
860
00:54:41,559 --> 00:54:44,979
productivity of any country out there with these tools,
861
00:54:46,000 --> 00:54:48,580
yeah, and I think this is a great place to
862
00:54:48,580 --> 00:54:52,810
try and to wind this down. But there's just so much to unpack
863
00:54:52,900 --> 00:54:56,410
in here. But Liam, if if someone listening is going to take away
864
00:54:56,620 --> 00:54:59,800
one idea from the conversation or from your research, what
865
00:54:59,830 --> 00:55:01,020
would. What would you like that to be?
866
00:55:01,620 --> 00:55:07,350
Yeah, I would say really try to understand the how this
867
00:55:07,740 --> 00:55:10,530
is a lot more of an exponential technology than anything that
868
00:55:10,530 --> 00:55:16,020
we've ever seen, including the internet. The just look back at
869
00:55:16,050 --> 00:55:19,080
that chart of how many tokens Open Rotary is doing of a
870
00:55:19,740 --> 00:55:24,560
25,000% increase-that's just astronomical-and there are going
871
00:55:24,560 --> 00:55:27,560
to be so many opportunities that are created out of this. Whether
872
00:55:27,620 --> 00:55:31,820
it's upleveling your own skills, creating new businesses out of
873
00:55:31,850 --> 00:55:36,290
this, I think it's just-I would highly recommend reading this
874
00:55:36,350 --> 00:55:41,260
report to see where, at least I think, value will accrue in this
875
00:55:41,890 --> 00:55:46,480
AI native world, and where it may give you ideas for starting
876
00:55:46,570 --> 00:55:49,300
businesses, et cetera, and really encourage founders who
877
00:55:49,390 --> 00:55:53,800
are on the cutting edge to reach out to us here. And in addition,
878
00:55:53,890 --> 00:55:56,920
too, I would just think about how to really become the most AI
879
00:55:57,220 --> 00:56:00,720
version of yourself because it will only bring you a lot of
880
00:56:00,720 --> 00:56:02,040
benefits in the future.
881
00:56:02,160 --> 00:56:04,920
I know research is a really core part of what
882
00:56:05,010 --> 00:56:08,250
Early Writers does or provides to the ecosystem. You guys have
883
00:56:08,340 --> 00:56:11,430
some great newsletters that I'd encourage everyone to sign up
884
00:56:11,520 --> 00:56:15,210
for. But Singularity Stack is not just, as I understand it, a
885
00:56:15,300 --> 00:56:18,150
one-off report, but you you you have a living part of your
886
00:56:18,180 --> 00:56:21,320
website that will continually update. Can you talk a little
887
00:56:21,350 --> 00:56:24,470
bit about how people can access what you've already done, and
888
00:56:24,470 --> 00:56:27,410
then how to stay on top of the developments that you see since
889
00:56:27,530 --> 00:56:29,180
you've published it?
890
00:56:29,329 --> 00:56:32,689
Yeah, for sure. We, yeah, please check out
891
00:56:32,869 --> 00:56:36,019
earlywriters.com. We publish a bunch of research there. You can
892
00:56:36,109 --> 00:56:39,079
subscribe to our newsletter there too, and then we also have
893
00:56:39,679 --> 00:56:43,569
a weekly newsletter that just goes into that tries to track
894
00:56:43,629 --> 00:56:46,419
the singularity over time, and the singularity, if if we
895
00:56:46,479 --> 00:56:48,999
haven't already mentioned it, it's just defined as the
896
00:56:49,809 --> 00:56:53,829
acceleration that is too great for the human eye to really
897
00:56:53,919 --> 00:56:57,519
measure. And so, while while we can't necessarily measure each
898
00:56:57,579 --> 00:57:00,519
single improvement over time, we're trying to really keep
899
00:57:00,609 --> 00:57:03,779
everybody abreast to the latest developments as it relates to
900
00:57:03,869 --> 00:57:06,899
open source advances, what it means for the economy and
901
00:57:07,169 --> 00:57:11,609
Bitcoin and companies in the space. And so, if you subscribe
902
00:57:11,699 --> 00:57:16,319
to our website, we'll add you to all of our research lists. And
903
00:57:17,429 --> 00:57:19,859
please reach out if you're building companies on the edge
904
00:57:19,949 --> 00:57:23,959
of this too. liam@earlygriders.com, and
905
00:57:24,109 --> 00:57:25,819
really appreciate you having me on today, Lynne.
906
00:57:26,929 --> 00:57:28,969
We thank you for your research. We thank you for
907
00:57:28,999 --> 00:57:31,699
all the thought that you're giving this, and the ideas for
908
00:57:31,759 --> 00:57:36,139
opportunities, both for founders as well as for investors. And it
909
00:57:36,199 --> 00:57:39,139
just gives a lot to think about in a positive way. That I think
910
00:57:39,619 --> 00:57:43,089
you know, with a narrative that is becoming more fearful toward
911
00:57:43,539 --> 00:57:46,329
AI, it's so important to look at what benefits it's achieving
912
00:57:46,509 --> 00:57:50,889
already and what the potential is for the just the advancement
913
00:57:51,249 --> 00:57:54,219
of of where we go from here. So we we really appreciate it.
914
00:57:54,279 --> 00:57:57,219
Thank you for listening to this episode of Build with Bitcoin.
915
00:57:57,369 --> 00:58:00,479
If you found it of value, please take a second to like,
916
00:58:00,569 --> 00:58:03,659
subscribe, or share, this helps the visibility and reach of our
917
00:58:03,749 --> 00:58:06,269
podcast, so that more people are aware of the innovation
918
00:58:06,359 --> 00:58:10,259
happening in and around Bitcoin. It truly means a lot. I'd also
919
00:58:10,319 --> 00:58:12,989
like to take this opportunity to invite you to join us at an
920
00:58:13,049 --> 00:58:16,949
event that Israel and I are hosting, Meeta Tech Talks 2026,
921
00:58:17,519 --> 00:58:21,469
taking place from October 25th to the 27th at the exclusive
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Puntamita Resort in Mexico. This will be an intimate gathering of
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125 invite-only participants, exploring how the future of
924
00:58:29,749 --> 00:58:33,439
capital is being shaped by the intersection of Bitcoin,
925
00:58:33,799 --> 00:58:37,459
artificial intelligence, and energy. To request an invite or
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00:58:37,519 --> 00:58:41,829
for more information, visit mitatechtalks.com. We hope
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00:58:41,889 --> 00:58:45,099
you'll join us, and thanks again for being a part of the Build
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00:58:45,129 --> 00:58:46,179
with Bitcoin community.