Sergey Kolesnikov

Head Of Applied Research at Shadow Startup

Singapore
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Summary

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Rockstar
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Sergey Kolesnikov is a Head of Applied Research based in Singapore with a decade of experience bridging academic research and industrial AI productization, focused on reinforcement learning, deep learning, and sequential decision making. He founded and led Tinkoff's AI Research department, publishing 20+ papers including multiple spotlights while building open-source ecosystems and an academic partnership with MIPT. As creator and lead developer of the Catalyst PyTorch framework (3.3k stars, 7M downloads) and contributor to Kaggle/docker-python tests, he blends hands-on engineering with reproducible research practices. His career spans leading NLP, CV and recommender teams to doubling chatbot automation and deploying human-in-the-loop CV-OCR pipelines, demonstrating an ability to move models into production at scale. Now heading applied research at a stealth-stage startup, he continues to develop novel algorithms alongside practical systems engineering. A mathematician by training from MIPT, he uniquely pairs rigorous theory with pragmatic product delivery and developer-first tooling.
code10 years of coding experience
job6 years of employment as a software developer
bookMaster's degree, Mathematics and Computer Science, Master's degree, Mathematics and Computer Science at Moscow Institute of Physics and Technology (State University) (MIPT)
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Github Skills (6)

unit-testing10
pytorch10
python10
unit-test10
test-automation10
numpy8

Programming languages (9)

JavaC++ShellCRustHTMLSwiftJupyter Notebook

Github contributions (5)

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Kaggle/docker-python

Sep 2019 - Sep 2019

Kaggle Python docker image
Role in this project:
userQA Engineer / Test Automation Engineer
Contributions:7 commits, 1 PR, 6 comments in 6 days
Contributions summary:Sergey's commits primarily focus on creating and updating test files within the `tests` directory. These tests cover functionality within the `catalyst` library, including version verification and the execution of an MNIST example with PyTorch. The user implemented and modified tests to ensure the correct behavior of the library, specifically focusing on the training and evaluation process of a neural network model. The commits reflect an iterative approach, adding new tests and refining existing ones to improve test coverage.
kagglepythondocker-imagedata-sciencedocker
Scitator/papers

Mar 2018 - Jun 2018

Contributions:31 commits, 29 pushes, 1 branch in 3 months
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