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Reproducible Data Science with Pachyderm

Reproducible Data Science with Pachyderm

By : Svetlana Karslioglu
5 (3)
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Reproducible Data Science with Pachyderm

Reproducible Data Science with Pachyderm

5 (3)
By: Svetlana Karslioglu

Overview of this book

Pachyderm is an open source project that enables data scientists to run reproducible data pipelines and scale them to an enterprise level. This book will teach you how to implement Pachyderm to create collaborative data science workflows and reproduce your ML experiments at scale. You’ll begin your journey by exploring the importance of data reproducibility and comparing different data science platforms. Next, you’ll explore how Pachyderm fits into the picture and its significance, followed by learning how to install Pachyderm locally on your computer or a cloud platform of your choice. You’ll then discover the architectural components and Pachyderm's main pipeline principles and concepts. The book demonstrates how to use Pachyderm components to create your first data pipeline and advances to cover common operations involving data, such as uploading data to and from Pachyderm to create more complex pipelines. Based on what you've learned, you'll develop an end-to-end ML workflow, before trying out the hyperparameter tuning technique and the different supported Pachyderm language clients. Finally, you’ll learn how to use a SaaS version of Pachyderm with Pachyderm Notebooks. By the end of this book, you will learn all aspects of running your data pipelines in Pachyderm and manage them on a day-to-day basis.
Table of Contents (16 chapters)
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1
Section 1: Introduction to Pachyderm and Reproducible Data Science
5
Section 2:Getting Started with Pachyderm
12
Section 3:Pachyderm Clients and Tools

Chapter 7: Pachyderm Operations

In Chapter 6, Creating Your First Pipeline, we created our first pipeline, as well as learning how to create Pachyderm repositories, put data into a repository, create and run a pipeline, and view the results of the pipeline. We now know how to create a standard Pachyderm pipeline specification and include our scripts in it so that they can run against data in our input repository.

In this chapter, we will review all the different ways to put data inside of Pachyderm and export it to outside systems. We will learn how to update the code that runs inside of your pipeline and what the process of updating the pipeline specification is. We will learn how to build a Docker container and test it locally before uploading it to a registry.

We will also look into the most common troubleshooting steps that you should perform when a pipeline fails.

This chapter will cover the following topics:

  • Reviewing the standard Pachyderm workflow
  • Executing...
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Reproducible Data Science with Pachyderm
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