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D

AI Product Lead

3-5 Years
SGD 8,000 - 10,000 per month

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  • Posted 2 months ago

Job Description

Key Responsibilities

AI System Ownership & Delivery

  • Own or co-own AI initiatives from problem definition, technical strategy, architecture design, to production deployment.
  • Make informed decisions on model selection, RAG architecture, agent orchestration, and system trade-offs under real-world constraints.
  • Design and optimize LLM inference pipelines, embeddings, and system performance for reliability and scalability.

Product-Oriented AI Engineering

  • Collaborate closely with business, product, and leadership teams to translate ambiguous requirements into AI-driven solutions.
  • Design structured, reusable Prompt Engineering and agent workflows to ensure controllability, robustness, and exploitability.
  • Evaluate build vs. buy decisions across models, agent platforms, and infrastructure.

Multi-Agent Systems & Reasoning

  • Design and orchestrate multi-agent systems using frameworks such as LangChain, LangGraph, MCP, or equivalent.
  • Implement reasoning paradigms including ReAct, Chain-of-Thought (CoT), Tree-of-Thought (ToT).
  • Assess and integrate agent platforms (e.g., Coze, Dify, FastGPT) when appropriate.

RAG & Knowledge Infrastructure

  • Design and iterate on Retrieval-Augmented Generation (RAG) architectures.
  • Build and optimize knowledge systems using vector databases such as Milvus, FAISS, or Chroma.
  • Continuously improve retrieval quality, context grounding, and reasoning accuracy.
  • Track emerging AI trends in model alignment, agent systems, and multimodal AI.
  • Contribute to internal standards, documentation, prototypes, and technical decision frameworks.
  • Mentor engineers or collaborate with external partners when needed.

QUALIFICATIONS

Required

  • Bachelor's degree or above in Computer Science, AI, or a related field.
  • Previous experience founding, co-founding, or being an early technical member of an AI startup, or leading AI products in a startup environment.
  • Proven delivery of at least one end-to-end AI product (LLM / RAG / Agent-based system) in production.
  • Strong hands-on experience with LLMs, Prompt Engineering, RAG pipelines, and agent frameworks.
  • Solid understanding of ReAct-style agent workflows and multi-agent system design.
  • Experience making technical decisions under uncertainty, cost, and time constraints.

Nice to Have

  • Experience with LoRA / QLoRA, model alignment, or inference optimization.
  • Exposure to AI product commercialization, user feedback loops, or go-to-market iteration.
  • Open-source contributions, technical writing, or public speaking.
  • Strong cross-functional communication and leadership skills.

More Info

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Job ID: 140108273