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AI Podcasts

December 31, 2025

[State of Context Engineering] Agentic RAG, Context Rot, MCP, Subagents — Nina Lopatina, Contextual

Latent Space

AI
Key Takeaways:
  1. The transition from Model-Centric to Context-Centric AI. As base models commoditize, the value moves to the proprietary data retrieval and prompt optimization layers.
  2. Implement an instruction-following re-ranker. Use small models to filter retrieval results before they hit the main context window to maintain high precision.
  3. Context is the new moat. Your ability to coordinate sub-agents and manage context rot will determine your product's reliability over the next year.
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December 31, 2025

[NeurIPS Best Paper] 1000 Layer Networks for Self-Supervised RL — Kevin Wang et al, Princeton

Latent Space

AI
Key Takeaways:
  1. The convergence of RL and self-supervised learning. As the boundary between "learning to see" and "learning to act" blurs, the winning agents will be those that treat the world as a giant classification problem.
  2. Prioritize depth over width. When building action-oriented models, increase layer count while maintaining residual paths to maximize intelligence per parameter.
  3. The "Scaling Laws" have arrived for RL. Expect a new class of robotics and agents that learn from raw interaction data rather than human-crafted reward functions.
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December 31, 2025

[State of AI Papers 2025] Fixing Research with Social Signals, OCR & Implementation — Team AlphaXiv

Latent Space

AI
Key Takeaways:
  1. The Age of Scaling is hitting a wall, leading to a migration toward reasoning and recursive models like TRM that win on efficiency.
  2. Filter your research feed by implementation ease rather than just citation count to accelerate your development cycle.
  3. In a world of AI-generated paper slop, the ability to quickly spin up a sandbox and verify code is the only sustainable competitive advantage for AI labs.
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December 31, 2025

[State of MechInterp] SAEs in Production, Circuit Tracing, AI4Science, "Pragmatic" Interp — Goodfire

Latent Space

AI
Key Takeaways:
  1. The transition from Black Box to Glass Box AI. Trust is the next moat, and interpretability is the tool to build it.
  2. Use feature probing for high-stakes monitoring. It is more effective and cheaper than using LLMs as judges for tasks like PII scrubbing.
  3. Understanding model internals is no longer just a safety research project. It is a production requirement for any builder deploying AI in regulated or high-stakes environments over the next 12 months.
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December 31, 2025

[State of Code Evals] After SWE-bench, Code Clash & SOTA Coding Benchmarks recap — John Yang

Latent Space

AI
Key Takeaways:
  1. The transition from completion to agency means benchmarks are moving from static snapshots to active environments.
  2. Integrate unsolvable test cases into internal evaluations to measure model honesty.
  3. Success in AI coding depends on navigating the messy, interactive reality of production codebases rather than chasing high scores on memorized puzzles.
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December 31, 2025

[State of Research Funding] Beyond NSF, Slingshots, Open Frontiers — Andy Konwinski, Laude Institute

Latent Space

AI
Key Takeaways:
  1. The center of gravity in AI is moving from closed-door pre-training to open-source compound systems that prioritize context management.
  2. Identify research teams with long histories of collaboration and fund them before they incorporate to capture the highest upside.
  3. Open research is the only way to maintain a democratic and competitive AI ecosystem against both closed labs and international rivals.
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December 29, 2025

Beyond the Code: The Books That Shaped the Minds of AI Leaders

Turing Post

AI
Key Takeaways:
  1. The transition from technology push to market pull requires builders to stop focusing on the stack and start obsessing over user psychology.
  2. Apply the Mom Test by asking users about their current workflows instead of pitching your solution. This prevents building expensive features that nobody uses.
  3. The next decade of AI will be won by those who understand the human condition as deeply as they understand the transformer architecture.
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December 29, 2025

Memory in LLMs: Weights and Activations - Jack Morris, Cornell

AI Engineer

AI
Key Takeaways:
  1. The Macro Trend: Moving from "In-Context Learning" to "Weight-Based Memory" to bypass the quadratic costs of attention.
  2. The Tactical Edge: Use synthetic data generation to augment your fine tuning sets and prevent the model from forgetting its base knowledge.
  3. RAG is a stopgap. The long term winners will be those who build "neural file systems" where the model inherently knows the data.
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December 29, 2025

Where does consumer AI stand at the end of 2025?

a16z

AI
Key Takeaways:
  1. The "Everything App" is a myth. We are moving from general chat boxes to agentic workspaces that operate across your entire software stack.
  2. Build opinionated. Use the current model quality to solve one specific, high-value workflow rather than competing for the general assistant crown.
  3. 2026 is the year of the builder. The infrastructure is ready, the compute tension is real for Labs, and the market is hungry for products with a soul.
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Crypto Podcasts

December 16, 2025

Visa Stablecoin Strategy, N3on Crashout, AXL Acquisition, JPMorgan MMF on Ethereum & Nexus x Rialo

The Rollup

Crypto
Key Takeaways:
  1. Strategic Implication: The future of crypto is increasingly defined by institutional adoption, driven by the need for verifiable, private, and compliant digital assets and systems.
  2. Builder/Investor Note: Focus on foundational technologies like ZK proofs and secure interoperability. Avoid speculative retail trends that lack long-term utility.
  3. The "So What?": The convergence of AI and blockchain will redefine trust. Builders who integrate ZKPs to authenticate AI outputs and ensure agent accountability will capture significant value in the next 6-12 months.
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December 16, 2025

10 Crypto Predictions for 2026: $1M BTC, Wall Street Onchain & ETF Takeover

Bankless

Crypto
Key Takeaways:
  1. Strategic Implication: Crypto is transitioning from a niche, retail-driven asset class to a mainstream, institutionally-backed financial infrastructure. This shift will drive sustained growth, reduced volatility, and lower correlation with traditional assets.
  2. Builder/Investor Note: Re-evaluate crypto allocations, recognizing the shift from retail-driven cycles to institutional adoption. Explore diversified exposure beyond Bitcoin, including ETH, Solana, and high-quality DeFi tokens as their economic capture improves. The rise of on-chain vaults indicates demand for professional, diversified asset management strategies on-chain.
  3. The "So What?": The market is vastly underestimating the fundamental progress and institutional acceptance of crypto. The "suit coiners" are bullish for a reason, and their capital will reshape the landscape in 2026 and beyond.
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December 15, 2025

When Do We Buy, Global M2, Does Crypto Need A Catalyst, & Owning Your L’s

1000x Podcast

Crypto
Key Takeaways:
  1. Strategic Implication: The crypto market is maturing. Expect smaller percentage returns and less volatile swings, but a stronger foundation for assets with real value.
  2. Builder/Investor Note: Focus on Bitcoin accumulation in the identified value zone. Avoid speculative altcoin bets unless they demonstrate clear utility and sustainable economics.
  3. The "So What?": The market is in a temporary lull due to year-end flows and M2 divergence. Position for a potential rebound in January, driven by fresh capital and anticipated Western stimulus.
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December 15, 2025

Bittensor TAO First Halving || Live community call

The Opentensor Foundation | Bittensor TAO

Crypto
Key Takeaways:
  1. TAO's Centrality: The halving reinforces TAO's role as the ecosystem's core asset, with its scarcity driving value for all denominated subnet tokens.
  2. Builder/Investor Note: Focus on subnet "flow" and long-term vision over immediate revenue. Identify projects with strong community and innovative tech, as TAO Flow will accelerate the decline of underperforming subnets.
  3. The "So What?": Bittensor is entering a more mature, capital-efficient phase. The halving and technical upgrades create a more elastic market, rewarding genuine innovation and stake accumulation, while weeding out less viable projects.
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December 15, 2025

AI Knows You Too Well: Is Privacy a Lost Cause? | Andy Yen, Founder of Proton

Bankless

Crypto
Key Takeaways:
  1. Strategic Shift: The battle for privacy is a battle for power asymmetry. Companies with transparent, privacy-aligned business models (e.g., Proton's hybrid non-profit/for-profit structure) offer a viable alternative to surveillance capitalism.
  2. Builder/Investor Note: Invest in and build open-source, privacy-preserving infrastructure and applications with strong technical guarantees. The shrinking gap between open-source and proprietary AI makes this increasingly feasible and competitive.
  3. The "So What?": Your digital identity is paramount. Switching your primary email from a Big Tech provider (like Gmail) to a privacy-focused one (like Proton Mail) is a high-impact, low-effort action to opt out of pervasive data consolidation and reclaim agency in the digital age.
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December 14, 2025

Be Careful With Your Taxes If You Have Crypto ETFs: Bits + Bips

Unchained

Crypto
Key Takeaways:
  1. Proactive Tax Planning: Engage in tax loss harvesting now, leveraging the current wash sale exemption (with economic substance).
  2. Meticulous Record Keeping: The 1099-DA will be incomplete. Investors must maintain robust personal records for all crypto activity, especially for ETPs and DeFi.
  3. Software Opportunity: The complexity creates a massive market for sophisticated crypto tax software that can aggregate data and reconcile discrepancies.
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