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AI Podcasts

February 9, 2026

David George on the State of AI Markets

a16z

AI
Key Takeaways:
  1. AI is concentrating market power. Companies that embed AI natively into their product and operations are achieving disproportionate growth and efficiency, accelerating the disruption cycle for incumbents.
  2. Re-architect your product and engineering around AI-native tools and workflows. For investors, prioritize companies demonstrating high product engagement and efficiency (ARR per FTE) driven by core AI features, not just marketing spend.
  3. The AI product cycle is just beginning, promising 10-15 years of disruption. Companies that master AI-driven change management and business model innovation will capture immense value, while others will struggle to compete.
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February 8, 2026

AGI Already Happened... And Almost Everyone Missed It w/ Dr. Alexander Wissner-Gross

Milk Road AI

AI
Key Takeaways:
  1. The rapid maturation of AI, particularly in vision, language, and action models, is fundamentally redefining "general intelligence" and accelerating the obsolescence of both physical and cognitive labor.
  2. Investigate and build solutions around Universal Basic Services (UBS) and Universal Basic Equity (UBE) models, recognizing that traditional UBI is only a partial answer to the coming post-scarcity economy.
  3. AGI is not a distant threat but a present reality, demanding immediate strategic adjustments in how we approach labor, economic policy, and human-AI coupling over the next 6-12 months.
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February 10, 2026

⚡️ Reverse Engineering OpenAI's Training Data — Pratyush Maini, Datology

Latent Space

AI
Key Takeaways:
  1. AI model development is moving from a "generic foundation + specialized fine-tune" paradigm to one where core capabilities, like reasoning, are intentionally embedded during foundational pre-training. This means data curation for pre-training is becoming hyper-critical and specialized.
  2. Invest in or build data pipelines that generate high-quality, domain-specific "thinking traces" for mid-training. This enables smaller, more efficient models to compete with larger, general-purpose ones on specific tasks.
  3. The era of simply fine-tuning a massive foundation model for every task is ending. Success in AI will hinge on sophisticated, intentional data strategies that infuse desired capabilities directly into the model's core, driving a wave of specialized pre-training and more efficient, performant AI.
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February 6, 2026

Why the US need Open Models | Nathan Lambert on what matters in the AI and science world

Turing Post

AI
Key Takeaways:
  1. Geopolitical competition in AI is shifting from raw compute power to the strategic advantage gained through open-source collaboration, demanding a re-evaluation of national AI policy.
  2. Invest in and build on open-source AI frameworks and models, leveraging community contributions to accelerate product development and research breakthroughs.
  3. The next 6-12 months will define whether the US secures its long-term AI leadership by adopting open models, or risks falling behind nations that prioritize collaborative, transparent innovation.
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February 6, 2026

From $0 to $11B: The ElevenLabs Story

a16z

AI
Key Takeaways:
  1. The move from generic, robotic text-to-speech to emotionally intelligent, context-aware synthetic voice is a fundamental redefinition of digital communication. This enables new forms of content creation and personalized interaction.
  2. Builders should prioritize "emotional fidelity" in AI outputs, not just accuracy. Focus on models that capture nuance and context, as this is where true user engagement and differentiation lie.
  3. Voice AI, exemplified by ElevenLabs, is moving beyond simple utility to become a foundational layer for immersive digital experiences. Understanding its technical depth and ethical implications is crucial for investors and builders looking to capitalize on the next wave of human-computer interaction.
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February 6, 2026

A New Era of Context Memory with Val Bercovici from WEKA

Semi Doped

AI
Key Takeaways:
  1. The explosion of AI model complexity and scale is creating a critical technical bottleneck in data I/O, shifting the focus from raw compute power to efficient data delivery, making data infrastructure the new competitive battleground.
  2. Prioritize data platforms that offer unified, high-performance access across hybrid cloud environments to eliminate GPU starvation and accelerate AI development cycles.
  3. Investing in advanced "context memory" solutions now is not just an IT upgrade; it's a strategic imperative for any organization aiming to build, train, and deploy competitive AI models over the next 6-12 months.
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February 5, 2026

This 24-Year-Old Built an AI That Can Pass the Hardest Math Tests | Carina Hong, CEO of Axiom

Weights & Biases

AI
Key Takeaways:
  1. Demand for provably correct systems in hardware, software, and critical infrastructure creates a massive market for formal verification. AI scales these human-bottlenecked processes.
  2. Investigate formal verification tools for high-stakes codebases or chip designs. Prioritize solutions combining probabilistic generation with deterministic proof for speed and reliability.
  3. "Good enough" code is ending for critical applications. AI-driven formal verification is a commercial imperative, redefining development cycles and trust.
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February 6, 2026

Why the US need Open Models | Nathan Lambert on what matters in the AI and science world

Turing Post

AI
Key Takeaways:
  1. The macro shift: Geopolitical competition in AI is not just about raw model power; it is about who controls the foundational research and development platforms. Open models are the battleground for long-term national AI sovereignty.
  2. The tactical edge: Invest in open model research and infrastructure, particularly in post-training environments and high-quality data generation. This builds a resilient, transparent AI ecosystem that can adapt and innovate independently.
  3. The bottom line: The US must prioritize open model development now to secure its position as a global AI leader, foster domestic innovation, and provide accessible AI options for a diverse global user base over the next 6-12 months.
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February 5, 2026

Introducing 4D Creation Open Beta and the Future of Gaming with Roblox CEO Dave Baszucki

No Priors: AI, Machine Learning, Tech, & Startups

AI
Key Takeaways:
  1. The convergence of AI and immersive computing is pushing towards a "HoloDeck" future. Roblox's vector-based data storage of 13 billion monthly hours provides unprecedented training data for agentic NPCs and real-time world generation, fundamentally changing how virtual worlds are built and experienced.
  2. Invest in platforms that offer cloud-native, AI-accelerated creation tools and robust multiplayer synchronization. Prioritize those building on rich, proprietary 3D interaction data for superior AI agent training.
  3. The future of digital interaction is 4D, photorealistic, and AI-driven. Companies with a clear, long-term vision paired with rapid, cloud-connected iteration will capture the next wave of virtual co-experience, making them prime targets for investment and partnership over the next 6-12 months.
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Crypto Podcasts

October 28, 2025

Hash Rate - Ep 140 - The New Crucible Bittensor Wallet

Hash Rate pod - Bittensor $TAO & Subnets

Crypto
Key Takeaways:
  1. Security Is No Longer an Afterthought: The Crucible Wallet’s native Ledger integration provides the first hardware-secured, consumer-friendly way to manage TAO and subnet tokens, addressing a major security gap in the ecosystem.
  2. Automated Strategy Beats Day Trading: The "Staking to Core Alpha" feature offers a powerful tool that automatically reinvests yield into a customizable portfolio of subnets, saving users from the overwhelming task of constantly researching and reallocating assets.
  3. Capital Flow is King: The wallet's primary mission is to redirect staked TAO from the root network into deserving subnets, providing them with the capital needed to grow and achieve commercial success, which in turn strengthens the entire Bittensor network.
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October 28, 2025

How Crypto Neobanks Work: Frax, Cards, and Visa’s Role

Bankless

Crypto
Key Takeaways:
  1. The Real Metric Is GDP, Not Volume. A million dollars in daily card spending on real-world goods is a far more powerful signal of adoption than hundreds of millions in AMM swap volume. Watch the growth in real economic activity, not just on-chain shuffling.
  2. Infrastructure Is the Bottleneck. The race isn't just to launch another neobank; it's to build the underlying pipes. Protocols like Frax that power multiple stablecoins and neobanks are positioned to capture value from the entire ecosystem's growth.
  3. The End Game Is a Parallel Financial System. Crypto neobanks are the final link needed to close the economic loop. They enable a world where a user can save, earn yield, and spend entirely on-chain, making the concept of a bank account obsolete.
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October 28, 2025

LIVE: EQUITY PERPS, MEGAETH SALE, CRYPTO INTO EOY | 0xResearch

0xResearch

Crypto
Key Takeaways:
  1. Verticalize or Die. Protocols are aggressively bundling services to capture value and own the user experience. Standalone products are at risk of being outcompeted or acquired cheaply, as seen with Pump's acquisition of Padre.
  2. The Middle-Ground ICO is Hot. Highly anticipated projects like MegaETH are finding success with public sales that sit between illiquid private rounds and expensive public listings. For investors with capital, these offer a compelling risk/reward profile.
  3. Performance Trumps Purity. The debate is shifting. While credible neutrality is a good marketing angle, the rise of high-performance chains like Hyperliquid suggests users and capital will flow to the best product, regardless of its decentralization score.
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October 27, 2025

Why Every Major App Will Issue Their Own Stablecoin - m0 CEO

The Rollup

Crypto
Key Takeaways:
  1. Every App is a Future Fintech: Major applications will become their own central banks, issuing native stablecoins to control their financial rails, capture yield, and eliminate the platform risk inherent in relying on third-party issuers.
  2. Infrastructure, Not Brands, is the Real Game: The battle isn't over which stablecoin brand wins, but who builds the underlying rails that make a fragmented ecosystem of thousands of dollars feel like one seamless, interoperable network.
  3. The Stablecoin Market is Just Getting Started: Today's ~$300 billion stablecoin float is a "ridiculously small number." Expect a 100x expansion as money migrates from legacy bank ledgers to programmable, on-chain infrastructure.
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October 27, 2025

Why Pro Athletes Are Betting on Bitcoin, Crypto & Prediction Markets

Bankless

Crypto
Key Takeaways:
  1. Embrace Financial Autonomy: Athletes are adopting crypto not just for gains, but for control. They are tired of a financial system where they are told to "shut your mouth and go play basketball" while trusting strangers with their money.
  2. Regulation is a Two-Front War: The crypto industry must fight defensively to protect wins like stablecoin rewards while also playing offense to ensure new regulations don't stifle DeFi innovation before it can mature.
  3. Prediction Markets are Information Markets: Their true disruption isn't just taking on FanDuel; it's creating a more efficient, decentralized, and transparent way to surface truth in real-time, for everything from sports to politics.
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October 24, 2025

The Token Revolution | Roundup

Bell Curve

Crypto
Key Takeaways:
  1. **Buy the Blood:** Massive open interest liquidations have historically been powerful buy signals, not a reason to panic. The data shows strong positive returns in the 30-120 days following such events.
  2. **Invest in Token Factories:** The convergence of AI and crypto is creating a new paradigm. The most valuable companies will be those that control proprietary "token supplies" for identity, data, and assets, making the world machine-readable.
  3. **Pick Your Winners:** The market is maturing. As barriers to entry rise, capital will consolidate around established leaders. Shift focus from chasing the "next new thing" to identifying compounding winners in categories like L1s and exchanges.
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