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Essential Guide to LLMOps

You're reading from   Essential Guide to LLMOps Implementing effective strategies for Large Language Models in deployment and continuous improvement

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Product type Paperback
Published in Jul 2024
Publisher Packt
ISBN-13 9781835887509
Length 190 pages
Edition 1st Edition
Languages
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Author (1):
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Ryan Doan Ryan Doan
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Ryan Doan
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Table of Contents (14) Chapters Close

Preface 1. Part 1: Foundations of LLMOps FREE CHAPTER
2. Chapter 1: Introduction to LLMs and LLMOps 3. Chapter 2: Reviewing LLMOps Components 4. Part 2: Tools and Strategies in LLMOps
5. Chapter 3: Processing Data in LLMOps Tools 6. Chapter 4: Developing Models via LLMOps 7. Chapter 5: LLMOps Review and Compliance 8. Part 3: Advanced LLMOps Applications and Future Outlook
9. Chapter 6: LLMOps Strategies for Inference, Serving, and Scalability 10. Chapter 7: LLMOps Monitoring and Continuous Improvement 11. Chapter 8: The Future of LLMOps and Emerging Technologies 12. Index 13. Other Books You May Enjoy

The Future of LLMOps and Emerging Technologies

We’ll now review the current trends, technologies, and frameworks shaping LLMOps. This chapter reviews the dynamics of LLMOps, providing a comprehensive outlook on how these systems are developed, deployed, and managed responsibly. You will gain insights into the emerging technologies that are defining the next generation of language models and explore their benefits. By the end of this chapter, you will be equipped with the knowledge to understand and participate in the development of advanced LLM systems, while also being able to critically assess their implications and contribute to the discourse on responsible AI.

In this chapter, we’re going to cover the following main topics:

  • Identifying trends in LLM development
  • Emerging technologies in LLMOps
  • Considering responsible AI
  • Developing talent and skill
  • Planning and risk management
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