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Inhoud geleverd door Justin Macorin and Bradley Arsenault. Alle podcastinhoud, inclusief afleveringen, afbeeldingen en podcastbeschrijvingen, wordt rechtstreeks geüpload en geleverd door Justin Macorin and Bradley Arsenault of hun podcastplatformpartner. Als u denkt dat iemand uw auteursrechtelijk beschermde werk zonder uw toestemming gebruikt, kunt u het hier beschreven proces https://nl.player.fm/legal volgen.
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Taming Erratic Behavior in AI Agents

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Manage episode 422020687 series 3519364
Inhoud geleverd door Justin Macorin and Bradley Arsenault. Alle podcastinhoud, inclusief afleveringen, afbeeldingen en podcastbeschrijvingen, wordt rechtstreeks geüpload en geleverd door Justin Macorin and Bradley Arsenault of hun podcastplatformpartner. Als u denkt dat iemand uw auteursrechtelijk beschermde werk zonder uw toestemming gebruikt, kunt u het hier beschreven proces https://nl.player.fm/legal volgen.

As AI agents powered by large language models become more complex, developers often encounter erratic and unexpected behaviors during testing. From agents falling into infinite loops to models struggling with certain data formats, these issues can be tricky to diagnose and resolve. In this episode, Bradley Arsenault and Justin Macorin explore real-world examples of AI agents going off the rails. They discuss practical techniques like action governors, confusion matrix analysis, minimum task requirements, and targeted fine-tuning to create more robust and reliable agents. Tune in for valuable insights on taming unruly AI from two experienced practitioners at the forefront of prompt engineering and AI product development.


Continue listening to The Prompt Desk Podcast for everything LLM & GPT, Prompt Engineering, Generative AI, and LLM Security.
Check out PromptDesk.ai for an open-source prompt management tool.
Check out Brad’s AI Consultancy at bradleyarsenault.me
Add Justin Macorin and Bradley Arsenault on LinkedIn.
Please fill out our listener survey here to help us create a better podcast: https://docs.google.com/forms/d/e/1FAIpQLSfNjWlWyg8zROYmGX745a56AtagX_7cS16jyhjV2u_ebgc-tw/viewform?usp=sf_link


Hosted by Ausha. See ausha.co/privacy-policy for more information.

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39 afleveringen

Artwork
iconDelen
 
Manage episode 422020687 series 3519364
Inhoud geleverd door Justin Macorin and Bradley Arsenault. Alle podcastinhoud, inclusief afleveringen, afbeeldingen en podcastbeschrijvingen, wordt rechtstreeks geüpload en geleverd door Justin Macorin and Bradley Arsenault of hun podcastplatformpartner. Als u denkt dat iemand uw auteursrechtelijk beschermde werk zonder uw toestemming gebruikt, kunt u het hier beschreven proces https://nl.player.fm/legal volgen.

As AI agents powered by large language models become more complex, developers often encounter erratic and unexpected behaviors during testing. From agents falling into infinite loops to models struggling with certain data formats, these issues can be tricky to diagnose and resolve. In this episode, Bradley Arsenault and Justin Macorin explore real-world examples of AI agents going off the rails. They discuss practical techniques like action governors, confusion matrix analysis, minimum task requirements, and targeted fine-tuning to create more robust and reliable agents. Tune in for valuable insights on taming unruly AI from two experienced practitioners at the forefront of prompt engineering and AI product development.


Continue listening to The Prompt Desk Podcast for everything LLM & GPT, Prompt Engineering, Generative AI, and LLM Security.
Check out PromptDesk.ai for an open-source prompt management tool.
Check out Brad’s AI Consultancy at bradleyarsenault.me
Add Justin Macorin and Bradley Arsenault on LinkedIn.
Please fill out our listener survey here to help us create a better podcast: https://docs.google.com/forms/d/e/1FAIpQLSfNjWlWyg8zROYmGX745a56AtagX_7cS16jyhjV2u_ebgc-tw/viewform?usp=sf_link


Hosted by Ausha. See ausha.co/privacy-policy for more information.

  continue reading

39 afleveringen

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