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Student Researcher (Seed Vision – Long-Range Video Generation) – 2026 Start (PhD)

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美国 · San Jose(圣何塞) · 经验要求见详情
研发实习A161019美国Seed Foundation Model Campus Recruitment - Intern国际招聘

关于这个机会

About the team The Seed Vision Team focuses on foundational models for visual generation, developing multimodal generative models, and carrying out leading research and application development to solve fundamental computer vision challenges in GenAI. Researching and developing foundational models for visual generation (images and videos), ensuring high interactivity and controllability in visual generation, understanding patterns in videos, and exploring various visual-oriented tasks based on generative foundational models. Responsibilities - Develop scalable architectures for long-range video generation with consistent motion, identity, and layout. - Explore hierarchical or recurrent latent structures to support generation across long temporal spans. - Address challenges in temporal drift, motion collapse, and high-frequency detail retention. - Investigate autoregressive or chunked generation strategies that balance quality and memory. - Design evaluation protocols for long video quality (e.g., realism, consistency, semantic continuity).

任职要求

Minimum Qualifications: - Currently pursuing a PhD in Computer Vision, Machine Learning, or a related field. - Research experience in generative modeling, especially for video, motion, or temporal sequences. - First-author publications in CVPR, ICCV, ECCV, NeurIPS, ICLR, or ICML. - Proficiency in deep learning frameworks and experience with large-scale video datasets. Preferred Qualifications: - Experience with diffusion or transformer-based video models, or long-context sequence generation. - Familiarity with long-form video datasets. - Understanding of perceptual metrics and user-study-based video evaluation. As a condition of employment, all successful candidates must be able to establish authorization to work in the United States. For this position, the Company does not provide sponsorship or any immigration-related benefits.

官方来源与核验

字节跳动官方招聘 · 职位编号 7670326702018906421

最近核验:2026-09-16T14:05:07.210038+00:00

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