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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
Author Profile Icon Ryan Doan
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

Preface

Large language models (LLMs) stand as a pivotal advancement in AI, enhancing everything from chatbots to complex decision systems. As LLM applications grow, so does the need for specialized operational strategies, which we explore through the lens of large language model operations (LLMOps). This book aims to bridge the gap between traditional machine learning operations (MLOps) and the specialized requirements of LLMOps, focusing on the development, deployment, and management of these models.

Essential Guide to LLMOps introduces practices tailored to the unique challenges of language models, addressing technological implementations and stringent security and compliance standards. Through each chapter, this book covers the life cycle of LLMs across various industries, providing insights into data collection, model development, monitoring, compliance, and future directions. It is designed for a broad audience, from data scientists and AI researchers to business leaders, offering a comprehensive guide on navigating and leading in the complex landscape of large-scale language model applications.

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