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  • Building LLM Powered Applications: Create intelligent apps and agents with large language models

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Building LLM Powered Applications: Create intelligent apps and agents with large language models

4.2 out of 5 stars (46)

Purchase options and add-ons

Get hands-on with GPT 3.5, GPT 4, LangChain, Llama 2, Falcon LLM and more, to build LLM-powered sophisticated AI applications

Get With Your Book: PDF Copy, AI Assistant, and Next-Gen Reader Free

Key Features

  • Embed LLMs into real-world applications
  • Use LangChain to orchestrate LLMs and their components within applications
  • Grasp basic and advanced techniques of prompt engineering

Book Description

Building LLM Powered Applications delves into the fundamental concepts, cutting-edge technologies, and practical applications that LLMs offer, ultimately paving the way for the emergence of large foundation models (LFMs) that extend the boundaries of AI capabilities.

The book begins with an in-depth introduction to LLMs. We then explore various mainstream architectural frameworks, including both proprietary models (GPT 3.5/4) and open-source models (Falcon LLM), and analyze their unique strengths and differences. Moving ahead, with a focus on the Python-based, lightweight framework called LangChain, we guide you through the process of creating intelligent agents capable of retrieving information from unstructured data and engaging with structured data using LLMs and powerful toolkits. Furthermore, the book ventures into the realm of LFMs, which transcend language modeling to encompass various AI tasks and modalities, such as vision and audio.

Whether you are a seasoned AI expert or a newcomer to the field, this book is your roadmap to unlock the full potential of LLMs and forge a new era of intelligent machines.

What you will learn

  • Explore the core components of LLM architecture, including encoder-decoder blocks and embeddings
  • Understand the unique features of LLMs like GPT-3.5/4, Llama 2, and Falcon LLM
  • Use AI orchestrators like LangChain, with Streamlit for the frontend
  • Get familiar with LLM components such as memory, prompts, and tools
  • Learn how to use non-parametric knowledge and vector databases
  • Understand the implications of LFMs for AI research and industry applications
  • Customize your LLMs with fine tuning
  • Learn about the ethical implications of LLM-powered applications

Who this book is for

Software engineers and data scientists who want hands-on guidance for applying LLMs to build applications. The book will also appeal to technical leaders, students, and researchers interested in applied LLM topics.

We don’t assume previous experience with LLM specifically. But readers should have core ML/software engineering fundamentals to understand and apply the content.

Table of Contents

  1. Introduction to Large Language Models
  2. LLMs for AI-Powered Applications
  3. Choosing an LLM for Your Application
  4. Prompt Engineering
  5. Embedding LLMs within Your Applications
  6. Building Conversational Applications
  7. Search and Recommendation Engines with LLMs
  8. Using LLMs with Structured Data
  9. Working with Code
  10. Building Multimodal Applications with LLMs
  11. Fine-Tuning Large Language Models
  12. Responsible AI
  13. Emerging Trends and Innovations

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Customer Reviews
4.2 out of 5 stars 46
4.0 out of 5 stars 50
4.4 out of 5 stars 11
4.1 out of 5 stars 95
Audience Software engineers, data scientists, and researchers who want hands-on guidance to build LLM apps Data scientists, AI, ML, MLOps, and software engineers who want to build RAG-driven LLM/CV pipelines Developer engineers and software architects seeking best practices and design patterns Developers, researchers, and anyone interested in staying ahead of the curve with LLMs and LangChain
Goals and learning outcomes Gain foundational knowledge and learn to use LLMs in an ethical and responsible way Build accurate GenAI pipelines with RAG with embedded vector databases and integrated human feedback Learn design patterns to deploy and operationalize GenAI models Get guidance on the LangChain framework and learn to deploy LLM apps in production environments

Editorial Reviews

Review

“Out of all the 'build stuff with LLMs' books that have come out since ChatGPT was created, I have to say, this one is my favorite. Valentina Alto’s book is excellent, and it isn’t limited to LangChain or the OpenAI Python libraries. I really appreciate how she has described and showed different approaches for prompting, such as chain of thought and few-shot classification. Her explanations are clear, useful, and practical.

This book is a smooth and practical guide to building with LLMs, and I found it creative and relaxing. It gave me a bunch of good ideas for my own work. I highly recommend this book if you are a builder.”

David Knickerbocker, Chief Scientist, Co-Founder of Hometree Data, Inc.

About the Author

After completing her bachelor's degree in finance, Valentina Alto pursued a master's degree in data science in 2021. She began her professional career at Microsoft as an Azure Solution Specialist, and since 2022, she has been primarily focused on working with Data & AI solutions in the Manufacturing and Pharmaceutical industries. Valentina collaborates closely with system integrators on customer projects, with a particular emphasis on deploying cloud architectures that incorporate modern data platforms, data mesh frameworks, and applications of Machine Learning and Artificial Intelligence. Alongside her academic journey, she has been actively writing technical articles on Statistics, Machine Learning, Deep Learning, and AI for various publications, driven by her passion for AI and Python programming.

Product details

  • Publisher ‏ : ‎ Packt Publishing
  • Publication date ‏ : ‎ May 22, 2024
  • Language ‏ : ‎ English
  • Print length ‏ : ‎ 342 pages
  • ISBN-10 ‏ : ‎ 1835462316
  • ISBN-13 ‏ : ‎ 978-1835462317
  • Item Weight ‏ : ‎ 1.39 pounds
  • Dimensions ‏ : ‎ 7.5 x 0.78 x 9.25 inches
  • Best Sellers Rank: #712,057 in Books (See Top 100 in Books)
  • Customer Reviews:
    4.2 out of 5 stars (46)

About the author

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Valentina Alto
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After completing her Bachelor's degree in Finance, Valentina Alto pursued a Master's degree in Data Science in 2021. She began her professional career at Microsoft as an Azure Solution Specialist, and since 2022, she has been primarily focused on working with Data & AI solutions in the Manufacturing and Pharmaceutical industries. Valentina collaborates closely with system integrators on customer projects, with a particular emphasis on deploying cloud architectures that incorporate modern data platforms, data mesh frameworks, and applications of Machine Learning and Artificial Intelligence. Alongside her academic journey, she has been actively writing technical articles on Statistics, Machine Learning, Deep Learning, and AI for various publications, driven by her passion for AI and Python programming.