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Scaling Machine Learning with Spark - by  Adi Polak (Paperback) - 1 of 1

Scaling Machine Learning with Spark - by Adi Polak (Paperback)

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Highlights

  • Learn how to build end-to-end scalable machine learning solutions with Apache Spark.
  • Author(s): Adi Polak
  • 291 Pages
  • Computers, Data Science

Description



About the Book



"Learn how to build end-to-end scalable machine learning solutions with Apache Spark. With this practical guide, author Adi Polak introduces data and ML practitioners to creative solutions that supersede today's traditional methods. You'll learn a more holistic approach that takes you beyond specific requirements and organizational goals--allowing data and ML practitioners to collaborate and understand each other better ... [Also] examines several technologies for building end-to-end distributed ML workflows based on the Apache Spark ecosystem with Spark MLlib, MLflow, TensorFlow, and PyTorch"--



Book Synopsis



Learn how to build end-to-end scalable machine learning solutions with Apache Spark. With this practical guide, author Adi Polak introduces data and ML practitioners to creative solutions that supersede today's traditional methods. You'll learn a more holistic approach that takes you beyond specific requirements and organizational goals--allowing data and ML practitioners to collaborate and understand each other better.

Scaling Machine Learning with Spark examines several technologies for building end-to-end distributed ML workflows based on the Apache Spark ecosystem with Spark MLlib, MLflow, TensorFlow, and PyTorch. If you're a data scientist who works with machine learning, this book shows you when and why to use each technology.

You will:

  • Explore machine learning, including distributed computing concepts and terminology
  • Manage the ML lifecycle with MLflow
  • Ingest data and perform basic preprocessing with Spark
  • Explore feature engineering, and use Spark to extract features
  • Train a model with MLlib and build a pipeline to reproduce it
  • Build a data system to combine the power of Spark with deep learning
  • Get a step-by-step example of working with distributed TensorFlow
  • Use PyTorch to scale machine learning and its internal architecture
Dimensions (Overall): 9.19 Inches (H) x 7.0 Inches (W) x .62 Inches (D)
Weight: 1.04 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 291
Genre: Computers
Sub-Genre: Data Science
Publisher: O'Reilly Media
Theme: Machine Learning
Format: Paperback
Author: Adi Polak
Language: English
Street Date: April 11, 2023
TCIN: 1006606166
UPC: 9781098106829
Item Number (DPCI): 247-46-9381
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 0.62 inches length x 7 inches width x 9.19 inches height
Estimated ship weight: 1.04 pounds
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