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Research Scientist Intern; NextGen Recommendation PhD

Job in San Jose, Santa Clara County, California, 95111, USA
Listing for: Tiktok
Apprenticeship/Internship position
Listed on 2026-06-01
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, Data Scientist, AI Engineer (Applied/Software), Artificial Intelligence
Job Description & How to Apply Below
Position: Research Scientist Intern (TikTok - NextGen Recommendation) - 2026 Start (PhD)
About the Team
You will be joining Tik Tok's Next-Generation Recommendation team, focused on pioneering cutting-edge recommendation systems powered by advanced large-model technologies. This team is dedicated to advancing Tik Tok's personalized content discovery and user experiences by harnessing the power of large models and leveraging massive user data to build revolutionary recommendation technologies. By pushing the boundaries of deep learning and large-scale system design, we strive to achieve breakthroughs in recommendation accuracy, user engagement, and scalability to serve billions of users worldwide.

We are looking for talented individuals to join us for an internship in 2026. PhD Internships at Tik Tok aim to provide students with the opportunity to actively contribute to our products and research, and to the organization's future plans and emerging technologies.

PhD internships at Tik Tok provide students with the opportunity to actively contribute to our products and research, and to the organization's future plans and emerging technologies. Our dynamic internship experience blends hands-on learning, enriching community-building and development events, and collaboration with industry experts.

Applications will be reviewed on a rolling basis - we encourage you to apply early. Please state your availability clearly in your resume (Start date, End date).

Responsibilities:

* Design and develop next-generation large-scale recommendation systems optimized for personalized, engaging, and scalable user experiences.

* Leverage state-of-the-art machine learning and deep learning techniques, including large model technologies(LLM and MLLM, etc), to enhance recommendation performance and accuracy.

* Collaborate with cross-disciplinary teams, including infrastructure engineers, pmo, and researchers, to create advanced systems that improve recommendation relevance, diversity, and user engagement.

Minimum Qualifications:

* Currently pursuing PhD Degree in Computer Science, Machine Learning, Artificial Intelligence, Statistics, or a related field.

* Hands-on experience in one or more of the following areas:
Large Language Models (LLM), Machine Learning, Deep Learning, Recommender Systems, Data Mining, or Natural Language Processing

* Familiarity with PyTorch or Tensor Flow, solid foundation in data structures and algorithms.

* Excellent communication and teamwork skills, and a passion for learning new techniques and tackling challenging problems

Preferred Qualifications:

* Strong engineering and infrastructure development skills, with hands-on experience in building and optimizing distributed systems and processing large-scale online/offline dataflow. Proficiency in CUDA programming (experience with Triton) is highly desirable.

* Prior research/industry experience in at least two of the following areas-multimodal content understanding, personalized recommendation, or large-scale cross-domain optimization-is a significant advantage.

* In-depth knowledge and expertise in large-scale Transformer architectures, including mastery of the latest optimization techniques such as Sparse Attention, Linear Attention, Flash Attention, and other cutting-edge methods to enhance model performance and efficiency.

* Publications at major AI-related conferences such as NeurIPS, ICML, ICLR, AAAI, IJCAI, ACL, NAACL, EMNLP, CVPR, ICCV, ECCV, KDD, ICDM, SDM, Rec Sys, or simply on arXiv but with large impact

* Strong track record in AI-related competitions, or participation in public/open-source AI-related projects of high visibility.
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