Aleksandr Rezanov

Aleksandr Rezanov

Machine Learning Engineer @ Snap Inc.

About

Deep learning engineer & teamleader with 5 years of ML experience. I have a passion for generative AI research-connected products. I worked both as an NLP and CV research engineer. My major is generative CV and its development: diffusion models and generative adversarial networks.

Country

United Kingdom

City

London Area

Industry

Research

Skill

Generative Adversarial Networks (GANs), Computer Vision, Convolutional Neural Networks (CNN), Machine Learning, Deep Neural Networks (DNN), Generative Neural Networks, Object Detection, Artificial Neural Networks, PyTorch, Python, Artificial Intelligence (AI), Algorithms, Git, semantic segmentation, Deep Learning, Data Science, TensorFlow, Natural Language Processing (NLP), Image Processing, Pattern Recognition

Experience

Snap Inc.

Machine Learning Engineer

Snap Inc.

LinkedIn
2025-6 - Present · 1 yr 4 mos

Большой Лондон, Англия, Соединенное Королевство

Higgsfield AI

Machine Learning Engineer

Higgsfield AI

LinkedIn
2024-4 - 2025-2 · 11 mos

AI video generation startup targeting on revolutionizing video generation process for marketing and consumer markets ● utilized post training of diffusion models for customized video generation achieving state-of-the-art motion quality according to the human evaluation; ● owned and developed fast custom pipeline for autonomous data preparation; ● introduced and developed a novel MLOps approach to reduce prototype time-to-market from weeks to days.

Rask AI

Computer Vision Research Teamleader

Rask AI

LinkedIn
2023-7 - 2024-4 · 10 mos

AI video generation startup (Brask) with video localization platform (Rask) ● developed novel GANs architectures to achieve state-of-the-art quality of lipsync in terms of mean opinion score; ● merged active speaker detection and speaker diarization to release first-ever multispeaker lipsync; ● built best-in-class out-of-sync detector leading to the increase in synchronization quality by 15% according to the human evaluation; ● developed GPU-only image processing pipeline to reduce video inference processing time by a factor of 5; ● adopted diffusion models to create a synthetic dataset to increase lipsync model’s synchronization quality by 15%; ● led a team of 5 Research and Machine Learning Engineers to develop one of the best lipsync solutions on the market.

Rask AI

Computer Vision Research Engineer

Rask AI

LinkedIn
2022-11 - 2023-7 · 9 mos

As a Research engineer, I was in charge of developing a state-of-the-art lip-sync approach.

Inworld AI

Machine Learning Engineer

Inworld AI

LinkedIn
2021-11 - 2022-11 · 1 yr 1 mo

Mountain View, California, United States

The leading AI engine for NPC development. Most funded startup in AI for gaming ● built a custom queue and register implementations to parallelize data processing and enable request deduplication, leading to the reduce in processing time by 50%; ● developed a probabilistic model to move from reactive agents to proactive.

Neuromation

Machine Learning Engineer

Neuromation

LinkedIn
2020-7 - 2021-11 · 1 yr 5 mos

California, United States

AI consulting partnering and impacting top tech companies: Huawei, NVIDIA, Amazon, and Microsoft ● built model for generation of gym training plan using generative transformer beating quality of the top tier US coaches in the terms of mean opinion score; ● developed a robust pipeline for sota face mask detection on ip camera under challenging environment in the wild with detection mAP of 99% and classification accuracy about 90% (while available solutions had wild guess accuracy); ● optimized detection pipeline postprocessing by finding and reimplementing bottleneck leading to the reduction of processing time from 60 to 0.5 seconds.

Moscow Institute of Physics and Technology (State University) - MIPT, Phystech

Computer Vision Researcher

Moscow Institute of Physics and Technology (State University) - MIPT, Phystech

LinkedIn
2019-9 - 2020-7 · 11 mos

Moscow

Self-driving laboratory at MIPT ● developed a novel solution for CNN-based localization using GAN for bird-eye view synthesis; ● built fast and robust novel 6d pose estimation method based on CenterNet achieving 20 fps on single gpu while having sota quality.

Education

Moscow Institute of Physics and Technology (State University) (MIPT)

Moscow Institute of Physics and Technology (State University) (MIPT)

LinkedIn

Computer Science

2020-9 - 2022-7 · 1 yr 11 mos

Master program organized by one of the leading computer vision companies - ABBYY. Master thesis - research of transformers for document image dewarping

Moscow Institute of Physics and Technology (State University) (MIPT)

Moscow Institute of Physics and Technology (State University) (MIPT)

LinkedIn

condensed matter

2016 - 2020 · 4 yrs

Aleksandr Rezanov's Contact Information

Email

******@***.com

Phone

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