Global Frontier Tech Recruitment Program - Intern

Ellis Technologies, Inc.

Singapore

On-site

SGD 27,900 - 39,060

Part time

14 days+

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Job summary

Ellis Technologies, Inc. is offering a Research Scientist Intern position for 2027 focusing on LLM applications in international e-commerce. This internship is a chance to contribute to cutting-edge technologies and collaborate with industry experts in a dynamic environment.

The ideal candidate is currently pursuing a PhD in a technical discipline, has solid AI/ML expertise, and excellent programming and teamwork skills. This position promises a rich learning and development experience.

Qualifications

  • Currently pursuing a PhD with a strong foundation in data structures and algorithms.
  • Research experience in Deep Learning, NLP, CV, Reinforcement Learning, or Multimodal Learning.

Responsibilities

  • Contribute to product and research in e-commerce.
  • Collaborate with product and technology teams on e-commerce scenarios.

Skills

AI/ML Expertise
Programming abilities
Strong communication skills
Teamwork skills

Education

Currently pursuing PhD in Computer Science, AI, Mathematics

Job description

Research Scientist Intern - LLM Applications for International E-commerce Scenarios - Global Frontier Tech Recruitment Program - 2027 Start (PhD)

Location:

Employment Type: Intern

Job Code: A176392

Responsibilities

We are looking for talented individuals to join us for an internship in 2027. PhD Internships at our Company 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. 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).

Team Introduction: The Data‑Global E-Commerce team serves as the core technological engine for ByteDance’s Global E‑commerce. We specialize in pioneering algorithmic and big data innovations within the e‑commerce sector, driven by our mission: "To make a beautiful life readily accessible and to help unique, high‑quality products reach a global market." Our work involves:

  • Developing advanced recommendation and search algorithms to help users efficiently discover products that match their interests.
  • Leveraging cutting‑edge risk control and platform governance technologies to ensure a secure shopping environment for all users.
  • Constructing a comprehensive product knowledge graph and intelligent customer service systems to elevate the intelligence of every stage of the transaction process.
  • Integrating machine learning with operations research algorithms to continuously optimize supply chain and logistics efficiency, thereby reducing operational costs.
  • Providing merchants with intelligent business tools that empower them to enhance their operational efficiency and customer service experience.

By joining us, you will collaborate with world‑class product and technology teams, leveraging ByteDance’s extensive traffic and data ecosystem to drive the deep integration and application of technology across various e‑commerce scenarios.

Project Focus

In today’s global e‑commerce landscape, intelligent systems must operate across increasingly complex and dynamic business environments. Yet existing approaches still face limitations in long‑horizon forecasting, cross‑modal understanding, and holistic decision‑making. This initiative is focused on building a next‑generation foundational large model purpose‑built for global e‑commerce applications. The model will integrate key business dimensions—such as users, products, content, logistics, and inventory—into a unified representation to support deep, context‑aware intelligence at scale.

Key Challenges
  1. Heterogeneous fusion and alignment: Unified modeling of user behavior sequences, product sales time‑series signals, and multimodal product content to achieve deep semantic alignment across high‑dimensional temporal data and multimodal representations.
  2. Synergy between recommendation LLMs and world models: Reformulating the recommendation problem as a generative task of producing ranked item lists for users, and leveraging large model technologies to enable end‑to‑end recommendation modeling.
  3. Tokenizer of recommendation items: Designing scalable tokenization mechanisms to encode billions of items into multimodal and semantically rich representations, supporting training and generation tasks. This includes pretraining over tens of terabytes of user behavior tokens, improving scaling law performance through optimized model architectures and training strategies, and reframing diverse recommendation tasks as post‑training objectives. Recommendation modeling is further enhanced using RLVR‑style approaches to maximize GMV and user experience. In addition, training and inference are co‑optimized, with high‑performance recommendation systems built on large‑model inference frameworks such as SGLang.
  4. Multimodal large models for e‑commerce: Developing multilingual, multimodal large models tailored for e‑commerce, achieving state‑of‑the‑art performance across core e‑commerce scenarios. Building on this foundation, we establish an e‑commerce agent backbone to enable scalable deployment of agent applications across diverse use cases.
  5. Agent evaluation, safety, and compliance: Establishing evaluation metrics and benchmarks aligned with real‑world business scenarios to ensure the robustness, safety, and compliance of agent systems, particularly under highly constrained and adversarial conditions.
Qualifications
Minimum Qualifications
  • Currently pursuing PhD in Computer Science, AI, Mathematics, or a related technical discipline, with a strong foundation in data structures, algorithms, and mathematical modeling.
  • AI/ML Expertise: Solid understanding and research experience in Deep Learning, NLP, CV, Reinforcement Learning, Generative Models, or Multimodal Learning.
Preferred Qualifications
  • Priority will be given to candidates with publications in international AI/CS conferences or journals (e.g., NeurIPS, ICML, ICLR, CVPR, ACL, KDD, SIGIR, WWW) or top rankings in recognized algorithmic competitions.
  • Excellent programming abilities in leading or participating in key projects related to Search, Advertising, Recommendation systems, or Large Language Models (LLMs).
  • Strong resilience, excellent communication and teamwork skills; passionate about technology, willing to embrace challenges with the team, and a drive for innovation.
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