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Researcher

China, Beijing, Beijing💼 Full-time🗓 2026-07-13 → 2026-07-19

Core

Conduct foundational and frontier research in Large Language Models, Multimodal LLMs, Agentic AI, and AI Systems/Infrastructure to push boundaries in model capability, efficiency, and reliability.

Role type

Researcher (AI/ML)

Builds

AI-native products, prototypes, and demos showcasing breakthrough capabilities.

Domain

Artificial Intelligence / Machine Learning

Deliverable

production ML models

Required skills

[Mathematics (linear algebra, probability, optimization), Python, C/C++, Distributed training, Model optimization, End-to-end ML pipelines, Deep learning frameworks (PyTorch), Top-tier conference publication track record]

Preferred skills

[Experience in NLP, Computer Vision, Speech/Audio Processing, Multimodal AI, Reinforcement Learning, AI Systems/Infrastructure, Bridging research to production]

Technologies

[PyTorch, Python, C/C++]

Rewrite
## About the role - Conduct foundational and frontier research in Large Language Models (LLMs), Multimodal Large Language Models, Agentic AI, and AI Systems/Infrastructure — pushing the boundaries of what is possible in model capability, efficiency, and reliability. - Design, develop, and evaluate next-generation AI models and systems, from pre-training and post-training methodologies to novel architectures and scalable inference solutions. - Conceive and build AI-native products, prototypes, and demos that showcase breakthrough capabilities and translate research insights into tangible user experiences. - Publish influential research at top-tier venues and contribute to the broader research community through open-source releases, technical blogs, and industry engagement. ## Requirements - Bachelor's, Master's, or PhD degree in Computer Science, Software Engineering, Electrical Engineering, or a related technical field. - Candidates with strong quantitative backgrounds in fundamental disciplines — such as Mathematics, Physics, or Statistics — are equally encouraged to apply. - Solid foundation in mathematics (e.g., linear algebra, probability, optimization) with demonstrated analytical and problem-solving skills. - Proficient programming skills in one or more of the following: Python, C/C++, or other mainstream languages. - Strong self-learning ability and intellectual curiosity, with a track record of quickly mastering new domains, tools, and technologies. - Professional working proficiency in English, both written and verbal, sufficient for authoring technical papers, documentation, and cross-team communication. - Research experience in one or more of the following areas: Large Language Models, Natural Language Processing, Computer Vision, Speech/Audio Processing, Multimodal AI, Reinforcement Learning, or AI Systems/Infrastructure. - Publication track record at top-tier conferences or journals (e.g., ICLR, NeurIPS, ICML, ACL, EMNLP, CVPR, ICCV). - Hands-on experience with large-scale distributed training, model optimization, or building end-to-end ML pipelines. - Familiarity with modern deep learning frameworks (e.g., PyTorch) and large-scale computing environments. - Experience shipping AI-powered features or products, demonstrating the ability to bridge the gap between research and production.
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