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AI Researcher

Singapore, Singapore
Full-time
Posted Today
Associate
On-site
AIMLData ScienceInformation TechnologyIT Services and IT Consulting

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Job Description

Roles & Responsibilities

Research & Data Analysis

  • Analyse structured datasets to uncover patterns, trends, and insights that support research and business initiatives.
  • Develop and apply predictive and statistical models such as regression, classification, and forecasting techniques.
  • Conduct exploratory data analysis (EDA), feature engineering, and data quality assessments.
  • Design and execute statistical experiments including hypothesis testing and model validation.
  • Evaluate model performance and communicate findings, assumptions, and limitations clearly.

AI & Intelligent Systems Development

  • Explore and implement LLM-powered agent frameworks for workflow automation and intelligent reasoning.
  • Build AI agents capable of interacting with analytical tools, predictive models, and databases.
  • Integrate AI systems with structured datasets and model pipelines to support end-to-end analytical tasks.
  • Assess agent performance across reasoning quality, tool usage, reliability, and failure handling.
  • Stay updated on emerging AI and agent technologies, sharing insights with the wider team.

Technical Development

  • Develop clean, maintainable Python code for data processing, modelling, and visualisation tasks.
  • Work with SQL databases for querying and managing structured data.
  • Use standard data science and machine learning libraries such as Pandas, NumPy, Scikit-learn, and visualisation tools.
  • Contribute to collaborative codebases and support reproducible experimentation and data workflows.

Collaboration & Communication

  • Partner with researchers and technical stakeholders to deliver research initiatives and solution prototypes.
  • Support preparation of technical reports and presentations for both technical and non-technical audiences.
  • Participate in research discussions, peer reviews, and knowledge-sharing sessions.


Requirements

  • Bachelor’s, Master’s, or PhD in Computer Science, Data Science, Mathematics, Statistics, Engineering, Physics, or related quantitative disciplines.
  • Fresh graduates with strong academic projects, internships, research experience, competitions, or open-source contributions are welcome.

Technical Skills

  • Strong Python programming skills with experience using data science and machine learning libraries.
  • Understanding of data wrangling, feature engineering, and structured data processing.
  • Good mathematical and statistical foundations relevant to machine learning.
  • Familiarity with supervised, unsupervised, and generative modelling techniques.
  • Basic knowledge of SQL and relational databases.

Personal Attributes

  • Curious and research-oriented mindset.
  • Strong analytical and problem-solving skills.
  • Comfortable working in exploratory and evolving environments.
  • Clear communicator with strong collaboration skills.
  • Self-motivated and eager to learn new technologies and methodologies.

Source: LinkedIn
123 applicants

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