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Federated Learning and Privacy-preserving RAGs

This course will teach you how to design RAG pipelines that respect privacy, using federated learning and privacy-preserving techniques to secure sensitive data in enterprise environments.

Advanced
29m

Created by Eva Paunova

Last Updated Feb 20, 2026

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  • Course

Federated Learning and Privacy-preserving RAGs

This course will teach you how to design RAG pipelines that respect privacy, using federated learning and privacy-preserving techniques to secure sensitive data in enterprise environments.

Advanced
29m

Created by Eva Paunova

Last Updated Feb 20, 2026

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  • AI
What you'll learn

Sensitive domains like healthcare and finance need RAG pipelines that safeguard data privacy.

In this course, Federated Learning and Privacy-preserving RAGs, you’ll learn how to secure enterprise AI systems while maintaining performance.

First, you’ll explore the principles and challenges of federated learning and why privacy is essential for RAG.

Next, you’ll build a federated learning pipeline using tools like PySyft and OpenFL to train models without sharing raw data.

Finally, you’ll apply privacy-preserving methods, such as secure multi-party computation and differential privacy, to protect sensitive information.

By the end of this course, you’ll have the skills needed to design RAG pipelines that are both accurate and secure for real-world deployment.

Federated Learning and Privacy-preserving RAGs
Advanced
29m
Table of contents

About the author
Eva Paunova - Pluralsight course - Federated Learning and Privacy-preserving RAGs
Eva Paunova
1 courses 0.0 author rating 0 ratings

Eva Paunova is a Senior AI Research Scientist specializing in LLMs, trust, and evaluation. She helps learners build reliable AI systems with real-world impact.

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