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Privacy Techniques for Data Science

Jim Klucar Jim Klucar | Director of Data Science | Immuta

Demand is increasing for technology companies to safeguard individual data. This demand is leading to data regulations, algorithm accountability and systems that purposely add noise to data to protect privacy. This presentation examines data privacy regulations currently in place, and teaches data privacy algorithms such as K-anonymization, Randomized Response, and Differential Privacy. Moreover, it will cover how to perform analysis with differentially private query systems and conclude with the impact data privacy has on Machine Learning performance.

Jim Klucar
Jim Klucar
Director of Data Science | Immuta

17 years of experience ranging from Signal Processing, System Modeling, Software Development, Statistics, and Big Data architectures. I like to concentrate, write software, and architect scalable systems. I dislike getting hit with Nerf darts while doing so.