Gain hands-on experience in data privacy and privacy-preserving machine learning with open-source ML frameworks, while exploring techniques and algorithms to protect sensitive data from privacy breaches
– In an era of evolving privacy regulations, compliance is mandatory for every enterprise
– Machine learning engineers face the dual challenge of analyzing vast amounts of data for insights while protecting sensitive information
– This book addresses the complexities arising from large data volumes and the scarcity of in-depth privacy-preserving machine learning expertise, and covers a comprehensive range of topics from data privacy and machine learning privacy threats to real-world privacy-preserving cases
– As you progress, you’ll be guided through developing anti-money laundering solutions using federated learning and differential privacy
– Dedicated sections will explore data in-memory attacks and strategies for safeguarding data and ML models
– You’ll also explore the imperative nature of confidential computation and privacy-preserving machine learning benchmarks, as well as frontier research in the field
– Upon completion, you’ll possess a thorough understanding of privacy-preserving machine learning, equipping them to effectively shield data from real-world threats and attacks
– This comprehensive guide is for data scientists, machine learning engineers, and privacy engineers
– Prerequisites include a working knowledge of mathematics and basic familiarity with at least one ML framework (TensorFlow, PyTorch, or scikit-learn)
– Practical examples will help you elevate your expertise in privacy-preserving machine learning techniques
Le informazioni nella sezione "Riassunto" possono far riferimento a edizioni diverse di questo titolo.
Srinivas Rao Aravilli has 25 years of experience in research and development of software products across various domains (search, ML/AI, distributed computing, privacy, and security). He is a speaker in several technical conferences related to Responsible AI, AIOps, Privacy Engineering, and distributed computing/processing. He published research papers in various journals related to Apache spark, SGX enclaves, SoA, ML/AI. Srinivas graduated with a master's degree in computer applications from Andhra University in 1997. His work history includes the likes of Cisco, Hewlett Packard, BEA, Interwoven. He resides in Bangalore with his wife and two children. Currently he is working as a director, data and AI Platform in Visa.
Le informazioni nella sezione "Su questo libro" possono far riferimento a edizioni diverse di questo titolo.
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