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Fun and Game(s) Theory with Aaditya Ramdas | Season 5 Episode 6

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Content provided by Lucy D'Agostino McGowan and Ellie Murray, Lucy D'Agostino McGowan, and Ellie Murray. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Lucy D'Agostino McGowan and Ellie Murray, Lucy D'Agostino McGowan, and Ellie Murray or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.

Aaditya Ramdas is an assistant professor at Carnegie Mellon University, in the Departments of Statistics and Machine Learning. His research interests include game-theoretic statistics and sequential anytime-valid inference, multiple testing and post-selection inference, and uncertainty quantification for machine learning (conformal prediction, calibration). His applied areas of interest include neuroscience, genetics and auditing (real-estate, finance, elections). Aaditya received the IMS Peter Gavin Hall Early Career Prize, the COPSS Emerging Leader Award, the Bernoulli New Researcher Award, the NSF CAREER Award, the Sloan fellowship in Mathematics, and faculty research awards from Adobe and Google. He also spends 20% of his time at Amazon working on causality and sequential experimentation.

Follow along on Twitter:

🎶 Our intro/outro music is courtesy of Joseph McDadeEdited by Cameron Bopp

  continue reading

60 episodes

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iconShare
 
Manage episode 415687010 series 2889462
Content provided by Lucy D'Agostino McGowan and Ellie Murray, Lucy D'Agostino McGowan, and Ellie Murray. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Lucy D'Agostino McGowan and Ellie Murray, Lucy D'Agostino McGowan, and Ellie Murray or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.

Aaditya Ramdas is an assistant professor at Carnegie Mellon University, in the Departments of Statistics and Machine Learning. His research interests include game-theoretic statistics and sequential anytime-valid inference, multiple testing and post-selection inference, and uncertainty quantification for machine learning (conformal prediction, calibration). His applied areas of interest include neuroscience, genetics and auditing (real-estate, finance, elections). Aaditya received the IMS Peter Gavin Hall Early Career Prize, the COPSS Emerging Leader Award, the Bernoulli New Researcher Award, the NSF CAREER Award, the Sloan fellowship in Mathematics, and faculty research awards from Adobe and Google. He also spends 20% of his time at Amazon working on causality and sequential experimentation.

Follow along on Twitter:

🎶 Our intro/outro music is courtesy of Joseph McDadeEdited by Cameron Bopp

  continue reading

60 episodes

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