Data Scientist

  • Singapore
  • Negotiable
  • Permanent
  • Discipline: Data
  • Ref: 50690
Responsibilities
•Lead complex R&D initiatives: drive research and innovation in LLMs, NLP, machine learning, and graph analytics, turning advanced techniques into production-grade solutions.
•Own the full data science lifecycle: from discovery, framing, and exploration to deployment, customer delivery, and long-term monitoring.
•Shape ambiguous challenges into well-defined problem statements and design practical, state-of-the-art solutions aligned with business and regulatory needs.
•Engage directly with customers and stakeholders: collaborate to co-design use cases, set success metrics, and ensure solutions are adopted, measurable, and impactful.
•Mentor and guide peers: elevate technical excellence, foster knowledge-sharing, and set best practices for experimentation, testing, and deployment.
•Prototype rapidly: explore new ideas and validate hypotheses quickly, while balancing innovation with scalability and maintainability.
•Ensure production success: design, implement, and optimize pipelines for data integration, validation, monitoring, and retraining to sustain long-term model performance.
•Communicate effectively: distill technical complexity into compelling business insights, helping stakeholders make informed decisions.
•Champion excellence in execution: enforce best practices in MLOps, DataOps, and software engineering to deliver reproducible, maintainable, and scalable solutions.
•Continuously improve tooling and processes that accelerate delivery, experimentation, and collaboration across the data science function.

Requirements
•Must be based in Singapore (remote-first team; flexible working environment).
•Bachelor’s degree, Master or PhD in Data Science, Computer Science, Statistics, or related field.
•6+ years of hands-on experience delivering data science projects from research to production, ideally in mission-critical domains.
•Proven expertise with LLMs and modern NLP frameworks (LangChain, LlamaIndex, OpenAI APIs, HuggingFace, etc.).
•Strong foundation in machine learning, graph analytics, anomaly detection, and unstructured data workflows.
•Advanced proficiency in Python and SQL with a track record of writing clean, modular, testable, and production-ready code.
•Experience with large-scale data platforms (e.g., PySpark, BigQuery) and scalable ML deployments.
•Solid knowledge of MLOps and DataOps, including CI/CD, monitoring, retraining, and reproducibility.
•Comfortable in Linux, Git, Docker, and modern collaboration workflows.
•Exceptional communication and stakeholder management skills: able to translate technical insights into business outcomes and influence at all levels.
•Proven ability to drive measurable impact: balancing state-of-the-art research with practical, customer-driven implementation.
•A mindset of ownership, flexibility, and resilience: you adapt quickly, handle ambiguity, and are committed to delivering results.

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We are an inclusive organisation and actively promote equality of opportunity for all with the right mix of talent, skills, and potential. We welcome all applications from a wide range of candidates. Selection for roles will be based on individual merit alone.

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