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#63: How PMs can bring predictability to AI products | Aman Khan (Head of Product @ Arize AI, ex-Spotify, ex-Apple)

56 snips
Jun 23, 2025
In this engaging discussion, Aman Khan, Head of Product at Arize AI, brings his wealth of experience from Spotify and Apple to the forefront. He delves into the challenges of integrating AI features into products, emphasizing the critical need for structured evaluations rather than relying on intuition. The conversation covers real-world examples of defining goals for AI products, the importance of collaborative evaluation among teams, and the hidden costs of AI development. Aman's insights reveal how to instill quality and reliability within fast-paced development environments.
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ADVICE

Importance of Accurate Data Labeling

  • A PM should collaborate with subject matter experts to ensure data is labeled accurately.
  • Proper labeling is critical for trustworthy AI evaluations to avoid misleading results.
ADVICE

Multi-Level AI Evaluation Approach

  • Evaluate AI on multiple levels: session-level outcomes, chat-level accuracy, and data correctness.
  • Use a funnel approach to catch bad experiences even if overall session seems successful.
ADVICE

Hallucination Evaluations Matter

  • Check if the AI uses the correct context properly to avoid hallucinated or incorrect outputs.
  • Evaluate hallucination separately to catch incorrect reasoning even with accurate data retrieval.
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