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LLM Engineer's Handbook

You're reading from   LLM Engineer's Handbook Master the art of engineering large language models from concept to production

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Product type Paperback
Published in Oct 2024
Publisher Packt
ISBN-13 9781836200079
Length 522 pages
Edition 1st Edition
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Authors (3):
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Maxime Labonne Maxime Labonne
Author Profile Icon Maxime Labonne
Maxime Labonne
Paul Iusztin Paul Iusztin
Author Profile Icon Paul Iusztin
Paul Iusztin
Alex Vesa Alex Vesa
Author Profile Icon Alex Vesa
Alex Vesa
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Table of Contents (15) Chapters Close

Preface 1. Understanding the LLM Twin Concept and Architecture 2. Tooling and Installation FREE CHAPTER 3. Data Engineering 4. RAG Feature Pipeline 5. Supervised Fine-Tuning 6. Fine-Tuning with Preference Alignment 7. Evaluating LLMs 8. Inference Optimization 9. RAG Inference Pipeline 10. Inference Pipeline Deployment 11. MLOps and LLMOps 12. Other Books You May Enjoy
13. Index
Appendix: MLOps Principles

2. Versioning

By now, we understand that the whole ML system changes if the code, model, or data changes. Thus, it is critical to track and version these three elements individually. But what strategies can we adopt to track the code, model, and data separately?

  • The code is tracked by Git, which helps us create a new commit (a snapshot of the code) on every change added to the codebase. Also, Git-based tools usually allow us to make releases, which typically pack multiple features and bug fixes. While the commits contain unique identifiers that are not human-interpretable, a release follows more common conventions based on their major, minor, and patch versions. For example, in a release with version “v1.2.3,” 1 is the major version, 2 is the minor version, and 3 is the patch version. Popular tools are GitHub and GitLab.
  • To version the model, you leverage the model registry to store, share, and version all the models used within your system. It usually...
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