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Innhold levert av Hugo Bowne-Anderson. Alt podcastinnhold, inkludert episoder, grafikk og podcastbeskrivelser, lastes opp og leveres direkte av Hugo Bowne-Anderson eller deres podcastplattformpartner. Hvis du tror at noen bruker det opphavsrettsbeskyttede verket ditt uten din tillatelse, kan du fĂžlge prosessen skissert her https://no.player.fm/legal.
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Episode 21: Deploying LLMs in Production: Lessons Learned

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Innhold levert av Hugo Bowne-Anderson. Alt podcastinnhold, inkludert episoder, grafikk og podcastbeskrivelser, lastes opp og leveres direkte av Hugo Bowne-Anderson eller deres podcastplattformpartner. Hvis du tror at noen bruker det opphavsrettsbeskyttede verket ditt uten din tillatelse, kan du fĂžlge prosessen skissert her https://no.player.fm/legal.

Hugo speaks with Hamel Husain, a machine learning engineer who loves building machine learning infrastructure and tools đŸ‘·. Hamel leads and contributes to many popular open-source machine learning projects. He also has extensive experience (20+ years) as a machine learning engineer across various industries, including large tech companies like Airbnb and GitHub. At GitHub, he led CodeSearchNet, a large language model for semantic search that was a precursor to CoPilot. Hamel is the founder of Parlance-Labs, a research and consultancy focused on LLMs.

They talk about generative AI, large language models, the business value they can generate, and how to get started.

They delve into

  • Where Hamel is seeing the most business interest in LLMs (spoiler: the answer isn’t only tech);
  • Common misconceptions about LLMs;
  • The skills you need to work with LLMs and GenAI models;
  • Tools and techniques, such as fine-tuning, RAGs, LoRA, hardware, and more!
  • Vendor APIs vs OSS models.

LINKS

  continue reading

34 episoder

Artwork
iconDel
 
Manage episode 383681385 series 3317544
Innhold levert av Hugo Bowne-Anderson. Alt podcastinnhold, inkludert episoder, grafikk og podcastbeskrivelser, lastes opp og leveres direkte av Hugo Bowne-Anderson eller deres podcastplattformpartner. Hvis du tror at noen bruker det opphavsrettsbeskyttede verket ditt uten din tillatelse, kan du fĂžlge prosessen skissert her https://no.player.fm/legal.

Hugo speaks with Hamel Husain, a machine learning engineer who loves building machine learning infrastructure and tools đŸ‘·. Hamel leads and contributes to many popular open-source machine learning projects. He also has extensive experience (20+ years) as a machine learning engineer across various industries, including large tech companies like Airbnb and GitHub. At GitHub, he led CodeSearchNet, a large language model for semantic search that was a precursor to CoPilot. Hamel is the founder of Parlance-Labs, a research and consultancy focused on LLMs.

They talk about generative AI, large language models, the business value they can generate, and how to get started.

They delve into

  • Where Hamel is seeing the most business interest in LLMs (spoiler: the answer isn’t only tech);
  • Common misconceptions about LLMs;
  • The skills you need to work with LLMs and GenAI models;
  • Tools and techniques, such as fine-tuning, RAGs, LoRA, hardware, and more!
  • Vendor APIs vs OSS models.

LINKS

  continue reading

34 episoder

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