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全职 Research Associate - Research Assistant (Data Science - Machine Learning Operations) 工作, 薪水, National University Of Singapore 公司招聘中 - Ricebowl

Research Associate - Research Assistant (Data Science - Machine Learning Operations)

Undisclosed

Singapore

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工作地点

  • Singapore

职位描述

岗位职责

The successful candidate will contribute to the development and delivery of practice-oriented teaching and applied data science initiatives within the department. This role combines hands-on technical support for modern data science environments with opportunities to participate in student and industry projects, enabling the translation of best practices into real-world applications.


The main responsibilities of the position include

  • Supporting the development and maintenance of teaching platforms and environments used in data science and AI courses
  • Managing code, data, and model lifecycle workflows (e.g., version control, data versioning, experiment tracking, and model management) to support teaching and project work
  • Designing and implementing reproducible, scalable, and well-documented data science pipelines for instructional and applied use
  • Conducting and supporting practical lab sessions on data science tools, workflows, and best practices
  • Supporting the management and utilisation of computational resources (e.g., GPU servers and related infrastructure)
  • Contributing to student and industry project work, including data preparation, modelling, evaluation, and deployment-related tasks where relevant
  • Collaborating with faculty and project teams to translate industry practices into teaching materials and applied workflows
  • Keeping abreast of current industry practices, tools, and standards in data science, AI, MLOps, and DevOps, and contributing to their adoption in both teaching and project settings



Qualifications / Discipline

  • Bachelor’s or Master’s degree in Data Science, Computer Science, Information Systems, or a related field


Skill

  • Proficiency in Python and common data science libraries
  • es.Familiarity with version control systems (e.g., Git)
  • Exposure to data and model lifecycle tools (e.g., data versioning, experiment tracking, model management
  • Understanding of end-to-end data science workflows, including data preparation, modelling, evaluation, and deployment concept.
  • Basic experience with containerisation and environment management tools (e.g., Docker).
  • Ability to work with computational environments (e.g., Linux-based systems, cloud or on-premise infrastructure.Strong problem-solving, organisational, and documentation skills, with attention to reproducibility.
  • Good communication skills and ability to work with both technical and non-technical stakeholders.


Experience

  • Experience working on data science or machine learning projects (academic or industry
  • Exposure to collaborative project environments (e.g., team-based development, shared repositories
  • Prior experience supporting teaching, conducting labs, or mentoring students is advantageous.
  • Experience with modern MLOps and/or DevOps practices (e.g., CI/CD, containerised workflows) is highly desirable.
  • Experience or interest in applied projects (e.g., industry collaborations, consulting, or capstone projects) is a plus.

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