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    Vojtech
    Vojtech@vojtech3w
    ⭐Andrej Karpathy🏛️Stanford University📱Kimi K3
    Karpathy Stanford AI engineering lecture

    @vojtechSkip the Netflix episode and dive into Karpathy’s one-hour Stanford lecture on AI engineering. It is a solid weekend bookmark. He breaks down the reality: an LLM only delivers 10%, which is merely the starting point rather than the final product. Prompting can push that metric to 30%, but that is where most developers halt their progress. The real work involves agents, loops, and systems to bridge the gap. The graph represents the full 100% required for things to actually survive production. Most engineers obsess over the 10% (the model) and the 30% (the prompt). Karpathy dedicates the session to the remaining 70%. Afterward, check out my Kimi K3 guide, From Loops to Graphs, to see how I implemented these concepts.

    Ver publicación original

    Karpathy Stanford AI engineering lecture

    Foto de @vojtech· Aug 26, 2026· Andrej Karpathy

    Sobre esta foto

    A man is speaking into a microphone in a lecture hall setting. He is wearing a blue hoodie and a watch. The mood is academic and informative. A Stanford logo is visible in the lower right corner. The on-screen text reads "I was here as a PhD student at Stanford Stanford".

    Ver todas las fotos de Andrej KarpathyLeer la wiki de Andrej Karpathy

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    Más fotos de Andrej Karpathy

    Ver todas las fotos de Andrej Karpathy
    Andrej Karpathy ChatGPT graph engineeringAndrej Karpathy ChatGPT graph engineeringGraphify open source toolGraphify open source toolClaude Code + Obsidian Second Brain setupClaude Code + Obsidian Second Brain setupAndrej Karpathy interviewAndrej Karpathy interviewAndrej Karpathy Anthropic GitHub 884 contributionsAndrej Karpathy Anthropic GitHub 884 contributions
    Foto
    Vojtech
    Vojtech@vojtech3w
    ⭐Andrej Karpathy🏛️Stanford University📱Kimi K3
    Karpathy Stanford AI engineering lecture

    @vojtechSkip the Netflix episode and dive into Karpathy’s one-hour Stanford lecture on AI engineering. It is a solid weekend bookmark. He breaks down the reality: an LLM only delivers 10%, which is merely the starting point rather than the final product. Prompting can push that metric to 30%, but that is where most developers halt their progress. The real work involves agents, loops, and systems to bridge the gap. The graph represents the full 100% required for things to actually survive production. Most engineers obsess over the 10% (the model) and the 30% (the prompt). Karpathy dedicates the session to the remaining 70%. Afterward, check out my Kimi K3 guide, From Loops to Graphs, to see how I implemented these concepts.

    Ver publicación original

    Karpathy Stanford AI engineering lecture

    Foto de @vojtech· Aug 26, 2026· Andrej Karpathy

    Sobre esta foto

    A man is speaking into a microphone in a lecture hall setting. He is wearing a blue hoodie and a watch. The mood is academic and informative. A Stanford logo is visible in the lower right corner. The on-screen text reads "I was here as a PhD student at Stanford Stanford".

    Ver todas las fotos de Andrej KarpathyLeer la wiki de Andrej Karpathy

    ?

    Aún no hay comentarios. ¡Sé el primero!

    Más fotos de Andrej Karpathy

    Ver todas las fotos de Andrej Karpathy
    Andrej Karpathy ChatGPT graph engineeringAndrej Karpathy ChatGPT graph engineeringGraphify open source toolGraphify open source toolClaude Code + Obsidian Second Brain setupClaude Code + Obsidian Second Brain setupAndrej Karpathy interviewAndrej Karpathy interviewAndrej Karpathy Anthropic GitHub 884 contributionsAndrej Karpathy Anthropic GitHub 884 contributions