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Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems
Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems
Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems
A must-have if you want to learn how to build and deploy ML models from scratch.
Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems
товар №: 254367001

Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems

товар №: 254367001

KZT 45797

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What Stands Out

Custom ML Framework
Tailored machine learning architecture allows developers to efficiently build, deploy, and manage AI applications, ensuring flexibility and scalability across various projects.
Seamless Integration
Easily integrates with existing systems and tools, streamlining workflows and reducing setup time, which enhances productivity for development teams.
Robust Support
Comprehensive documentation and community support enable users to troubleshoot effectively and share best practices, ensuring users maximize the platform's potential.

Информация о продукте

Shop Build a Machine Learning Platform (From Scratch): Build an Internal Developer Platform for Ml and Ai Systems online at a best price in Kazakhstan. 1633437337
  • Get a free eBook (PDF or ePub) from Manning as well as access to the online liveBook format (and its AI assistant that will answer your questions in any language) when you purchase the print book.Delivering a successful machine learning project is hard. This book makes it easier. In it, you’ll design a reliable ML system from the ground up, incorporating MLOps and DevOps along with a stack of proven infrastructure tools including Kubeflow, MLFlow, BentoML, Evidently, and Feast.A properly designed machine learning system streamlines data workflows, improves collaboration between data and operations teams, and provides much-needed structure for both training and deployment. In this book you’ll learn how to design and implement a machine learning system from the ground up. You’ll appreciate this instantly-useful introduction to achieving the full benefits of automated ML infrastructure.In Machine Learning Platform Engineering you’ll learn how to:Set up an MLOps platformDeploy machine learning models to productionBuild end-to-end data pipelinesEffective monitoring and explainabilityAbout the technologyAI and ML systems have a lot of moving parts, from language libraries and application frameworks, to workflow and deployment infrastructure, to LLMs and other advanced models. A well-designed internal development platform (IDP) gives developers a defined set of tools and guidelines that accelerate the dev process, improving consistency, security, and developer experience.About the bookMachine Learning Platform Engineering shows you how to build an effective IDP for ML and AI applications. Each chapter illuminates a vital part of the ML workflow, including setting up orchestration pipelines, selecting models, allocating resources for training, inference, and serving, and more. As you go, you’ll create a versatile modern platform using open source tools like Kubeflow, MLFlow, BentoML, Evidently, Feast, and LangChain.What's insideSet up an end-to-end MLOps/LLMOps platformDeploy ML and AI models to productionEffective monitoring, evaluation, and explainabilityAbout the readerFor data scientists or software engineers. Examples in Python.About the authorBenjamin Tan Wei Hao leads a team of ML engineers and data scientists at DKatalis. Shanoop Padmanabhan is a software engineering manager at Continental Automotive. Varun Mallya is a senior ML engineer at DKatalis.Table of ContentsPart 11 Getting started with MLOps and ML engineering2 What is MLOps?3 Building applications on KubernetesPart 24 Designing reliable ML systems5 Orchestrating ML pipelines6 Productionizing ML modelsPart 37 Data analysis and preparation8 Model training and validation: Part 19 Model training and validation: Part 210 Model inference and serving11 Monitoring and explainabilityPart 412 Designing LLM-powered systems13 Production LLM system designA Installation and setupB Basics of YAML
Publisher Manning Publications
Publication date 10 Mar. 2026
Edition 1st
Language English
Print length 504 pages
ISBN-10 1633437337
ISBN-13 978-1633437333
Dimensions 18.75 x 3.2 x 23.5 cm

Who Should Buy?

Suitable For
  • Data Scientists

    Ideal for data scientists looking to streamline their ML projects and integrate AI systems effectively.

  • Developers

    Great for developers wanting to build custom internal platforms that enhance machine learning workflows and productivity.

  • Startups

    Perfect for startups aiming to establish robust ML infrastructure without relying on third-party solutions.

Not Suitable For
  • Casual Users

    Not suitable for casual users or beginners who require simplified tools for basic ML applications.

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English edition Benjamin Hao Format: Paperback Editorial Review

Build A Machine Learning Platform (From Scratch): Build An Internal Developer Platform For Ml And Ai Systems is a comprehensive guide published by Manning Publications on March 10, 2026. With a substantial print length of 504 pages, this first edition book is tailored for those looking to establish a robust internal developer platform for effective machine learning and AI systems. Readers have praised the clear writing style and detailed explanations, making complex concepts accessible. The structured approach helps both beginners and experienced practitioners navigate the nuances of building machine learning platforms from the ground up, ensuring a strong foundation in both theory and practical application.

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Плюсы

  • Comprehensive 504-page guide for in-depth learning
  • Published by a reputable publisher
  • Clear writing style for easy comprehension
  • Suitable for beginners and practitioners alike
  • Well-structured approach to complex topics

Минусы

  • No interactive elements in the book

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