MLOps podcast #181 with Kyle Harrison, General Partner at Contrary, The Centralization of Power in AI.
// Abstract
Kyle Harrison delves into the limitations imposed by language, underscoring how it can impede our grasp and manipulation of reality while stressing the critical need for improved language model performance for real-time applications. He further explores the perils of centralizing power in AI, with a specific focus on the "Openness of AI", where concerns about privacy are brought to the forefront, prompting his call for businesses to reconsider their reliance on it. The discussion also traverses the evolving landscape of AI, drawing comparisons between prominent machine learning frameworks such as TensorFlow and PyTorch. Notably, the episode underscores the vital role of open-source initiatives within the AI community and highlights the unexpected involvement of Meta in driving open-source development.
// Bio
Kyle Harrison is a General Partner at Contrary, where he leads Series A and growth-stage investing. He joined Contrary from Index where he was a Partner, and before that he was a growth investor at Coatue. His portfolio includes iconic startups and public companies including Ramp, Replit, Cohere, Snowflake, and Databricks. He also regularly shares his analysis on the venture capital landscape via his Substack Investing 101.
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// Related Links
Website: https://investing1012dot0.substack.com/
The Openness of AI report: https://research.contrary.com/reports/the-openness-of-ai
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Timestamps:
[00:00] Kyle's preferred beverage
[00:20] Takeaways
[03:52] Hype in technology space
[09:20] Application Layer Revenue
[14:44] Stability AI Lawsuit
[18:08] Concern over concentration of power in AI
[20:20] Transparency concerns
[23:35] Open Source AI
[25:57] To use or not to use Open AI
[30:51] Lack of technical expertise and business-building capabilities
[35:09] AI Transparency and Accountability
[37:50] Traditional ML
[41:47] Finding a unique approach
[45:41] AGI limitations
[47:43] Using Agents
[49:46] Agents getting past demos
[54:39] Tech Challenges & Hoverboard Dreams
[58:04] Both AI hype and skepticism are foolish
[01:27] Wrap up