Student Researcher Intern
Edge Research Project for General Intelligence, Doubao Foundation Model Team
Confirmed live in the last 24 hours

ByteDance
No salary listed
Seattle, WA, USA
In Person
To further support long-horizon and high-impact AI research, we are launching the Seed Edge Research Initiative. This initiative focuses on developing general intelligence models — models that possess human-like learning abilities, interaction capabilities, and tool-use proficiency. We encourage bold, long-term research with inherent uncertainty and cross-modal, interdisciplinary collaboration. Seed Edge provides a highly flexible research environment and long-cycle evaluation, enabling researchers to pursue transformative AI challenges.
What You Will Work On
By joining the Seed Edge initiative, you will collaborate with us to explore:
1. Explore novel intrinsic reward mechanisms to enable models to engage in autonomous learning and continual self-improvement;
2. Explore the development of long-term memory mechanisms to support the next generation of efficient reasoning models and long-sequence reasoning and modeling.;
3. Advance the boundaries of multimodal perception by developing scalable methods to extract knowledge from massive multimodal data with ultra-low signal-to-noise ratios, while building a solid foundation for multimodal fusion and unified modeling;
4. Study how models can use tools and develop visually grounded action capabilities, including new approaches to foundation modeling for full-modality agents and interactive learning in complex environments.
We also welcome self-initiated research ideas — bring your vision and curiosity to help shape the future of general intelligence.
As part of the application process, we encourage you to prepare a research presentation. We're looking forward to deep technical conversations with you.
Minimum Qualifications
1. Currently pursuing a PhD degree, graduating in 2026 or later, in Computer Science, Artificial Intelligence, Automation, Mathematics, Physics, or related fields;
2. Solid research experience in one or more of the following areas: LLMs, computer vision, multimodal learning, AIGC (AI-Generated Content), or machine learning;
3. Strong curiosity and problem-solving skills, with the ability to independently explore solutions;
4. Strong communication and collaboration skills, with a deep passion for advancing fundamental technologies. Self-driven and open-minded in exploring unconventional ideas through iterative experimentation, aiming to push forward the boundaries of AI research.
Preferred Qualifications
1. Solid understanding of core machine learning principles and algorithmic thinking; prior publications at top-tier conferences/journals (e.g., CVPR, ECCV, ICCV, NeurIPS, ICLR, ICML, SIGGRAPH, SIGGRAPH Asia, etc.);
2. Proficient in C/C++ or Python, with strong programming skills. Recognition in competitions such as ACM/ICPC, NOI/IOI, TopCoder, or Kaggle is highly valued.
3. Experience leading impactful projects in any of the following domains: multimodal learning, LLMs, foundation models, world models, reinforcement learning, or rendering & generative models.

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