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    Fine Tuning and Evaluating LLMs for Agentic Use Cases

    Webinar
    May 29 at 10:00am PT

    What to expect?

    This session is focused on fine-tuning large language model (LLM) agents, acquiring crucial insights and techniques for enhancing the performance and specificity of local LLM agents in application automation. We'll explore a variety of topics, enabled by Weights & Biases, including:

    • Fine-tuning techniques: Learn about LORA (low-rank adaptation) and its role in refining LLM behavior for specific applications for both open source (Llama2) and closed source models (GPT 3.5-turbo)

    • Metrics and logging: Understand the importance of tracking the right metrics and maintaining detailed logs as it relates to Language Models;

    • Model Checkpointing and Comparison: Implement systematic model checkpointing for tracking progress and comparing iterations, facilitating optimal version selection through detailed performance analysis.

    • Practical evaluation: Engage in hands-on evaluations to assess the improvements in your fine-tuned models, both quantitatively and qualitatively

    Register Now

    Our Speakers

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    AS
    Anish Shah
    ML Engineer
    Weights & Biases
Looking for your ticket? Contact the organizer
Looking for your ticket? Contact the organizer