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Machine Learning Engineer Intern (Global E-Commerce, Recommendation) - 2027 Start

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新加坡 · Singapore · 经验要求见详情
R&DInternA73517A新加坡Undergraduate/Master Intern - 2027 Start国际招聘TikTok

关于这个机会

About the Team 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. We are a group of applied machine learning engineers and data scientists that focus on E-commerce recommendations. We are developing innovative algorithms and techniques to improve user engagement and satisfaction, converting creative ideas into business-impacting solutions. We are interested and excited in applying large scale machine learning to solve various real-world problems in E-commerce. 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. Responsibilities 1. Participate in building large-scale (billion level) E-commerce recommendation algorithms and systems, including commodity recommendations, live stream recommendations, short video recommendations etc. 2. Build long and short term user interest models, analyze and extract relevant information from large amounts of various data and design algorithms to explore users' latent interests efficiently. 3. Design, develop, evaluate and iterate on predictive models for candidate generation and ranking(eg. Click Through Rate and Conversion Rate prediction) , including, but not limited to building real-time data pipelines, feature engineering, model optimization and innovation. 4. Design and build supporting/debugging tools as needed. 5. Support the production of scalable and optimised AI/machine learning (ML) models. 6. Focus on building algorithms for the extraction, transformation and loading of large volumes of realtime, unstructured data to deploy AI/ML solutions from theoretical data science models. 7. Run experiments to test the performance of deployed models, and identify and resolve bugs that arise in the process. 8. Work in a team setting and apply knowledge in statistics, scripting and programming languages required by the firm. 9. Work with the relevant software platforms in which the models are deployed.

任职要求

Minimum Qualifications 1. Currently Pursuing a Undergraduate or Master's degree in Software Development, Computer Science, Computer Engineering, or a related technical discipline. 2. Strong programming and problem-solving ability. 3. Experience in applied machine learning, familiar with one or more of the algorithms such as Collaborative Filtering, Matrix Factorization, Factorization Machines, Word2vec, Logistic Regression, Gradient Boosting Trees, Deep Neural Networks, Wide and Deep etc. 4. Experience in Deep Learning Tools such as tensorflow/pytorch. 5. Experience with at least one programming language like C++/Python or equivalent. Preferred Qualifications 1. Experience in recommendation system, online advertising, information retrieval, natural language processing, machine learning, large-scale data mining, or related fields. 2. Publications at KDD, NeurIPS, WWW, SIGIR, WSDM, ICML, IJCAI, AAAI, RecSys and related conferences/journals, or experience in data mining/machine learning competitions such as Kaggle/KDD-cup etc.

官方来源与核验

字节跳动官方招聘 · 职位编号 7666290648937056565

最近核验:2026-09-16T12:31:41.068845+00:00

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