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Open nowPosted 25 days ago

Lead Research Engineer, ARTC

MyCareersFuture94,028 open roles

Pay
SGD 5,950 – SGD 11,900 a month
Where
West, Singapore
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Your applicationOpen nowLead Research Engineer, ARTCMyCareersFuture · West, Singapore
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This job: posted 25 days ago

The posting

Job Responsibilities

Agentic AI for Demand Planning

  • Design and develop agentic AI solutions for demand planning, integrating demand forecasting, demand sensing, supply-demand analysis, and planning recommendations.
  • Develop LLM-powered agents and agentic workflows that reason over supply chain data, invoke analytical tools and models, and generate actionable recommendations.
  • Apply recent LLM and agentic AI technologies, including tool/function calling, RAG, structured outputs, context management, agent orchestration, and human-in-the-loop workflows.
  • Integrate LLM agents with forecasting models, optimization algorithms, enterprise data, APIs, and business rules to support end-to-end planning processes.

Demand Planning Analytics

  • Develop and enhance demand forecasting and predictive analytics models, including data preparation, feature engineering, model evaluation, and forecast accuracy analysis.
  • Analyze demand changes, forecast deviations, supply-demand imbalances, and material shortage risks and assess their downstream impact.
  • Develop data-driven purchase and mitigation recommendations based on demand, inventory, supply availability, lead times, and operational constraints.

AI Application Development

  • Develop backend services and APIs integrating LLMs, AI agents, analytical models, databases, and enterprise systems.
  • Develop and integrate interactive frontends and dashboards that enable planners to review forecasts, investigate demand changes, interact with AI agents, and evaluate recommended actions.
  • Build end-to-end prototypes connecting frontend applications, backend services, agentic workflows, analytical models, and enterprise data.
  • Implement appropriate validation, monitoring, and human-in-the-loop controls to improve the reliability and explainability of AI-generated recommendations.

Research & Collaboration

  • Evaluate and apply emerging developments in LLMs, agentic AI, multi-agent systems, and AI application architectures to supply chain use cases.
  • Work closely with supply chain experts, AI scientists, data engineers, and software developers to translate business challenges into practical AI-driven solutions.
  • Contribute to research and industry projects in agentic demand planning and AI-driven supply chain decision support.

Job Requirements

  • Bachelor’s/Master’s degree in Computer Science, Data Science, Artificial Intelligence, Industrial Engineering, Operations Research, Supply Chain Management, or a related field
  • Strong proficiency in Python and relevant data analytics/AI libraries such as Pandas, NumPy, Scikit-learn, PyTorch, or equivalent frameworks
  • Hands-on experience developing applications using recent Large Language Model (LLM) architectures and technologies, including prompt engineering, structured outputs, tool/function calling, retrieval-augmented generation (RAG), and context management
  • Practical experience designing and implementing agentic AI or multi-agent workflows, including agent orchestration, tool integration, planning/reasoning, workflow management, and human-in-the-loop mechanisms
  • Familiarity with modern LLM and agentic application frameworks such as LangChain, LangGraph, LlamaIndex, Semantic Kernel, AutoGen, or equivalent technologies
  • Experience integrating LLMs and AI agents with analytical models, databases, APIs, enterprise systems, and external tools to build end-to-end AI applications
  • Strong backend development experience, including development of REST APIs, microservices, data services, and application/business logic using frameworks such as FastAPI, Flask, or equivalent technologies
  • Experience in frontend development and integration for AI applications using technologies such as React, Streamlit, Dash, Plotly, PyQt, or equivalent frameworks
  • Ability to develop end-to-end prototypes, connecting frontend interfaces, backend services, LLM/agentic workflows, analytical models, databases, and enterprise systems
  • Relevant experience in machine learning and predictive analytics, preferably involving time-series forecasting, demand forecasting, optimization, or other supply chain applications
  • Understanding of demand planning and supply chain analytics, including demand signals, forecast accuracy, inventory, material requirements, supply-demand balancing, and related supply chain KPIs
  • Familiarity with enterprise and supply chain systems such as SAP, ERP, MRP, MES, or related planning and transactional data sources is highly preferred
  • Experience implementing appropriate LLM guardrails, output validation, observability, evaluation, and monitoring to improve the reliability and traceability of agentic AI applications
  • Strong analytical and problem-solving skills, with the ability to translate complex business and planning problems into AI-enabled workflows and practical decision-support solutions
  • Excellent interpersonal and communication skills with the ability to work effectively with supply chain domain experts, AI researchers, data engineers, software developers, and industry stakeholders
  • Bonus: Familiarity with LLM evaluation, reasoning models, MCP/tool integration, vector databases, knowledge graphs, agent memory, workflow automation, explainable AI, and cloud/container deployment is advantageous

The above eligibility criteria are not exhaustive. A*STAR may include additional selection criteria based on its prevailing recruitment policies. These policies may be amended from time to time without notice. We regret that only shortlisted candidates will be notified.

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