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Multimodal AI Algorithm Expert-EMG / Interaction Perception, Pico

单位:字节跳动类别:研发类型:社招地点:圣何塞更新:2026-09-24

岗位信息

招聘单位字节跳动
工作地点圣何塞
官方更新时间2025-05-28 06:52:26

职位描述

About the Team

The team at PICO is dedicated to leverage technologies such as computer vision, deep learning, SLAM, 3D reconstruction, and multi-sensor fusion, we continuously expand the ways humans interact with the virtual world through handheld controllers, bare-hand tracking, eye-tracking, and XR interactive accessories, enhancing the overall interaction experience.

Responsibilities:

1. Research and develop innovative deep learning models with a focus on the intersection of surface electromyography (sEMG), computer vision, and IMU technologies;

2. Design and implement sEMG signal acquisition pipelines, optimize signal quality, and perform data preprocessing tasks such as denoising and feature extraction;

3. Explore spatiotemporal feature fusion methods (e.g., Transformer, LSTM, Spatiotemporal Convolutional Networks) to achieve efficient multimodal data fusion;

4. Handle sensor noise and interference in various environments, optimize model performance, and improve the generalization of algorithms

任职要求

Minimum Qualifications:

1. Master’s degree or above in machine learning, signal processing, computer science, statistics, speech and language technology, or a related field;

2. Proficient in the fundamentals of deep learning, with substantial experience in training and deploying deep models. Experience in fine-tuning end-to-end speech recognition frameworks (e.g., Conformer, RNN-T, LAS, CTC) and familiarity with 2D/3D perception algorithms in computer vision.;

3. Familiarity with sEMG signal acquisition and processing, including signal denoising (e.g., filtering algorithms) and feature extraction (e.g., time-domain and frequency-domain features);

4. Experience with common digital signal processing techniques, such as digital filtering, Fourier transforms, correlation analysis, and modulation.

Preferred Qualifications:

1. Experience in analyzing and modeling high-dimensional time-series data, such as speech signals, neural signals, physiological signals, videos, or other sensor data.

2. Publications in accredited academic conferences (e.g., CVPR, ICCV, ECCV) or participation in competitions like Kaggle, COCO, ImageNet, ActivityNet, and 3D-related challenges.

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