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      Machine Learning Engineering in Action

      5 in stock

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      SKU 9781617298714 Categories ,

      Machine Learning Engineering in Action<span style="mso-bidi-font-family:Calibri;mso-bidi...

      £45.39

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      Description

      Product ID:9781617298714
      Product Form:Paperback / softback
      Country of Manufacture:GB
      Title:Machine Learning Engineering in Action
      Authors:Author: Ben Wilson
      Page Count:300
      Subjects:Object-oriented programming (OOP), Object-oriented programming (OOP), Object oriented software engineering, Data capture and analysis, Machine learning, Object oriented software engineering, Data capture & analysis, Machine learning
      Description:

      Machine Learning Engineering in Action lays out an approach to building deployable, maintainable production machine learning systems. You will adopt software development standards that deliver better code management, and make it easier to test, scale, and even reuse your machine learning code!

      You will learn how to plan and scope your project, manage cross-team logistics that avoid fatal communication failures, and design your code''s architecture for improved resilience. You will even discover when not to use machine learning—and the alternative approaches that might be cheaper and more effective. When you''re done working through this toolbox guide, you will be able to reliably deliver cost-effective solutions for organizations big and small alike.

      Following established processes and methodology maximizes the likelihood that your machine learning projects will survive and succeed for the long haul. By adopting standard, reproducible practices, your projects will be maintainable over time and easy for new team members to understand and adapt.



      Field-tested tips, tricks, and design patterns for building MachineLearning projects that are deployable, maintainable, and secure from concept toproduction.
      In Machine Learning Engineering inAction, you will learn:

       

      •        Evaluatingdata science problems to find the most effective solution
      •       Scopinga machine learning project for usage expectations and budget
      •       Processtechniques that minimize wasted effort and speed up production
      •       Assessinga project using standardized prototyping work and statistical validation
      •       Choosingthe right technologies and tools for your project
      •       Makingyour codebase more understandable, maintainable, and testable
      •       Automatingyour troubleshooting and logging practices

      Databricks solutions architect BenWilson lays out an approach to building deployable, maintainable productionmachine learning systems. You''ll adopt software development standards thatdeliver better code management, and make it easier to test, scale, and evenreuse your machine learning code!


      Imprint Name:Manning Publications
      Publisher Name:Manning Publications
      Country of Publication:GB
      Publishing Date:2022-04-14

      Additional information

      Weight1054 g
      Dimensions187 × 235 × 39 mm