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Machine Learning Security with Azure

Machine Learning Security with Azure

By : Kalyva
4.8 (6)
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Machine Learning Security with Azure

Machine Learning Security with Azure

4.8 (6)
By: Kalyva

Overview of this book

With AI and machine learning (ML) models gaining popularity and integrating into more and more applications, it is more important than ever to ensure that models perform accurately and are not vulnerable to cyberattacks. However, attacks can target your data or environment as well. This book will help you identify security risks and apply the best practices to protect your assets on multiple levels, from data and models to applications and infrastructure. This book begins by introducing what some common ML attacks are, how to identify your risks, and the industry standards and responsible AI principles you need to follow to gain an understanding of what you need to protect. Next, you will learn about the best practices to secure your assets. Starting with data protection and governance and then moving on to protect your infrastructure, you will gain insights into managing and securing your Azure ML workspace. This book introduces DevOps practices to automate your tasks securely and explains how to recover from ML attacks. Finally, you will learn how to set a security benchmark for your scenario and best practices to maintain and monitor your security posture. By the end of this book, you’ll be able to implement best practices to assess and secure your ML assets throughout the Azure Machine Learning life cycle.
Table of Contents (17 chapters)
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1
Part 1: Planning for Azure Machine Learning Security
5
Part 2: Securing Your Data
8
Part 3: Securing and Monitoring Your AI Environment
13
Part 4: Best Practices for Enterprise Security in Azure Machine Learning

Assessing the Vulnerability of Your Algorithms, Models, and AI Environments

Welcome to your machine learning security journey with Azure! Together, we will explore all the methods and techniques to secure our AI projects and set a security baseline for our services. Let us start with a quick introduction to the machine learning (ML) life cycle and the Azure Machine Learning components and processes that go into working with ML in Azure. We will cover the essential knowledge you need to follow the concepts and implementations outlined in the rest of the book.

The next step will be to go through an example scenario, which we will reference throughout this book as the basis for applying the concepts of securing your data, models, workspace, and applications that use the deployed models from Azure Machine Learning. You can follow the instructions to re-create this scenario in your Azure Machine Learning environment to familiarize yourself with the Azure Machine Learning components.

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Machine Learning Security with Azure
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