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Data / ML, Engineering

Tuning Model Performance

July 9, 2021 / Global
Featured image for Tuning Model Performance
Figure 1: Hyperparameter Optimization using TURBO
Figure 2: Potential compute time saving by using early stopping
Figure 3: Learning Curves of all trials belonging to the same hyperparameter optimization job. Red bounding box highlights curves that are unlikely to be the best candidates based on early performance compared to other ongoing Trials
Joseph Wang

Joseph Wang

Joseph Wang serves as a Principal Software Engineer on the AI Platform team at Uber, based in San Francisco. His notable achievements encompass designing the Feature Store, expanding the capacity of the real-time prediction service, developing a robust model platform, and improving the performance of key models. Presently, Wang is focusing his expertise on advancing the domain of generative AI.

Michael Mui

Michael Mui

Michael Mui is a Staff Software Engineer on Uber AI's Machine Learning Platform team. He works on the distributed training infrastructure, hyperparameter optimization, model representation, and evaluation. He also co-leads Uber’s internal ML Education initiatives.

Viman Deb

Viman Deb

Viman Deb is a Senior Software Engineer on Uber's Machine Learning Platform team. He is based in the San Francisco Bay Area. He works on blackbox optimization service, Uber’s custom Bayesian Optimization algorithm, and Michelangelo’s Hyperparameter tuning workflows.

Anne Holler

Anne Holler

Anne Holler is a former staff TLM for machine learning framework on Uber's Machine Learning Platform team. She was based in Sunnyvale, CA. She worked on ML model representation and management, along with training and offline serving reliability, scalability, and tuning.

Posted by Joseph Wang, Michael Mui, Viman Deb, Anne Holler