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Software Engineer Intern (TikTok Global E-Commerce Recommendation & Search Architecture) - 2027 Start

TikTok
Trabajo desde casa  Trabajo desde casa
Prácticas, Informática/Tecnología, Inglés
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Descripción del puesto:

E-commerce is a new and fast growing business that aims at connecting all customers to excellent sellers and quality products, through E-commerce live-streaming, E-commerce short videos, and commodity recommendation. Our E-commerce Recommendation and Search Infra team is responsible for building up and optimizing the infrastructure for such recommendation and search systems, so as to provide the best experience for our users. We work closely with applied machine learning engineers and build scalable systems to support all kinds of innovative algorithms and techniques. The Search team is mainly responsible for the search algorithm innovation and architecture research and development of TikTok Shop. We use cutting-edge machine learning technology for end-to-end modeling and continuous innovation and breakthroughs, while focusing on the construction and performance optimization of distributed systems and machine learning systems. We are looking for talented individuals to join us for an internship. Our internship program offers students hands-on experience, industry exposure, and opportunities to apply their knowledge to real-world challenges while building a strong foundation for personal and professional growth. Interns will gain practical experience, explore potential career paths, and participate in social events, learning programs, and development workshops alongside industry professionals. Candidates may apply to a maximum of two positions across Our Company and its affiliates globally. Applications will be considered in the order they are submitted. Applications are reviewed on a rolling basis, so we encourage you to apply early. Please clearly state your availability in your resume, including your start and end dates. Successful candidates must be able to commit to at least 3 months long internship period. Responsibilities - Design, build and optimize distributed training infrastructure and low-latency online inference systems for large-scale recommendation models and Large Language Models - Develop high-performance GPU kernel implementations and efficient inter-node communication primitives to improve training and inference efficiency - Build compiler optimization passes and operator fusion technologies for deep learning frameworks to accelerate model execution

Requerimientos del candidato/a:

Minimum Qualifications: - Currently pursuing a Bachelor's or Master's degree in Computer Science, Computer Engineering, Information Systems, or a related technical discipline - Strong programming skills in C++ or Python, with solid understanding of data structures and algorithms - Familiarity with PyTorch or TensorFlow, and basic knowledge of Transformer architectures and Large Language Models (LLMs) Preferred Qualifications: - Hands-on experience with LLM training or inference through academic projects, internships, or open-source contributions - Familiarity with distributed training concepts (DP, TP, PP, FSDP, ZeRO) or GPU programming technologies (CUDA, Triton) - Strong problem-solving skills and passion for building large-scale AI systems

Origen: Web de la compañía
Publicado: 04 Ago 2026  (comprobado el 07 Ago 2026)
Tipo de oferta: Prácticas
Sector: Internet / Nuevos Medios
Duración: 3 meses
Idiomas: Inglés
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