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AI Solutions Engineer

Job Description - AI Solutions Engineer


Passionate about making a real impact? Be at the forefront of the data centre (DC) industry with a unique focus on sustainability, connectivity and AI which sets us apart as the next generation DC operator. You will also get to gain invaluable experience in a fast-growing industry that is powering the digitalisation wave. Be empowered to co-create the future with our dynamic teams!”


 


We are seeking an AI Solutions Engineer (Agentic AI) to design, build and deploy enterprise AI solutions using Large Language Models (LLMs), Retrieval-Augmented Generation (RAG) and AI Agents. You will develop production-ready AI applications that automate knowledge-intensive workflows, integrate with enterprise systems and deliver secure, scalable and trustworthy AI experiences.


 


How You will Make An Impact:


 


AI Solution Development                                                                           



  • Design, develop and deploy AI agents using LLMs, RAG and prompt engineering.

  • Build scalable AI workflows that automate enterprise business processes.

  • Translate business requirements into practical AI solutions.

  • Develop reusable prompt workflows, tool-calling capabilities and structured outputs.


 


Knowledge & RAG Engineering



  • Build and optimise RAG pipelines connected to approved enterprise knowledge sources.

  • Improve retrieval quality through chunking, embeddings, indexing and metadata strategies.

  • Maintain trusted knowledge bases and ensure source-grounded AI responses.


 


AI Platform & Integration



  • Integrate AI applications with enterprise systems, APIs, databases and internal platforms.

  • Develop secure tool-calling capabilities and support deployment into production.

  • Monitor and optimise AI application performance.


 


Model Quality & Governance



  • Design evaluation frameworks to measure response quality, retrieval accuracy and hallucination risks.

  • Optimise prompts, guardrails and model performance.

  • Support governance, version control and human-in-the-loop review processes.


 


Stakeholder Collaboration



  • Partner with product, engineering and business teams to deliver AI solutions.

  • Support demonstrations, UAT, production rollout and technical documentation.

  • Communicate technical concepts clearly to technical and non-technical stakeholders.


 


Skills for Success:


 



  • Bachelor's Degree in Computer Science, Artificial Intelligence, Data Science or related discipline.

  • 3–5 years of software engineering experience with Python.

  • Hands-on experience building LLM applications, AI Agents or RAG solutions.

  • Experience with LangChain, LangGraph, LlamaIndex or similar AI frameworks.

  • Experience integrating APIs, databases and enterprise systems.

  • Knowledge of vector databases, semantic search and prompt engineering.

  • Experience with Git, CI/CD and container technologies.


 


Preferred Skills:


 



  • Experience with Azure OpenAI, AWS Bedrock or Google Vertex AI.

  • Knowledge of MCP (Model Context Protocol) or AI agent orchestration.

  • Experience deploying open-source LLMs (e.g. vLLM, Ollama).

  • Exposure to MLOps, model fine-tuning or domain adaptation.


 


Hiring Manager: Sivasankar Subbiah


Talent Acquisition Manager: Kong Chiew Yen







 


 


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