DW
Data Wow Co., Ltd.

Senior AI Engineer (Enterprise Systems)

On-siteposted 3mo ago

Skills required

About this role

About the Role

As an AI Engineer on our Enterprise Systems team, you will be embedded directly in the trenches of our most strategic enterprise accounts. You'll take AI from proof of concept to production, navigate the chaos of real customer environments, and make complex agentic systems actually deliver business outcomes.

This is a consulting and hands-on delivery role. You will write production-grade code, architect intelligent agent workflows, debug pipelines at midnight before a go-live, and then walk into a boardroom the next morning to explain what you built and why it matters.

You'll own the full arc — from discovery and design through deployment and adoption — and your success is measured by one thing: does the customer's business actually change because of the AI you delivered?

If you love AI deeply, want to get your hands dirty across the entire delivery lifecycle, and feel equally at home talking to a team and writing LLM orchestration logic, this role was written for you.

What You'll Do

Enterprise AI Delivery

  • Embed with enterprise customers to understand their workflows, data environments, and operational constraints — and build AI solutions that fit their reality, not a sanitized sandbox
  • Own implementations end-to-end: from scoping and solution design through integration, testing, deployment, and handoff
  • Rapidly diagnose technical blockers — messy data, broken integrations, edge cases, legacy system quirks — and solve them yourself without waiting on a queue

Agentic AI Engineering

  • Design, build, and orchestrate multi-step AI agents that automate complex workflows across enterprise systems
  • Work with frameworks like LangGraph, LangChain, or similar to architect reliable, production-ready agentic pipelines
  • Apply sound judgment about what should be automated vs. what requires human-in-the-loop, and design accordingly
  • Continuously tune agent behavior based on real-world usage patterns you observe in the field

Technical Breadth

  • Build custom integrations, connectors, and data pipelines to bridge enterprise tech stacks with AI infrastructure
  • Work across the stack — APIs, vector databases, LLM APIs, cloud infrastructure, and front-end surfaces — to deliver complete, working systems
  • Write clean, maintainable code that others can build on top of

Product & Feedback Loop

  • Identify patterns across customer engagements that signal genuine product opportunities — and advocate for them with engineering and product teams with precision
  • Contribute to building internal tooling and repeatable delivery assets (deployment templates, agent blueprints, evaluation frameworks) that make the next implementation faster
  • Optionally: take ownership of building product features or internal tools that emerge from your field insights

Requirements

Must-Haves

  • 5+ years of software engineering experience, with at least 3 years focused on AI/ML systems in production environments
  • Hands-on experience building with LLMs (OpenAI, Anthropic, Gemini, or open-source models) — prompt engineering, RAG pipelines, fine-tuning, evaluation
  • Experience designing and deploying agentic AI workflows — multi-step reasoning, tool use, memory, planning
  • Understanding of inference trade-offs including latency, throughput, concurrency, batching, model selection, token usage, and infrastructure cost
  • Strong programming skills in Python; comfortable with APIs, cloud services (AWS/GCP/Azure), and enterprise databases
  • Proven ability to work directly with enterprise customers or technical stakeholders — you can translate complexity into clarity
  • End-to-end ownership mindset: you're not done when the code ships; you're done when the customer succeeds
  • Experience with MLOps/LLMOps; CI/CD, model/prompt/version management, automated evaluation, observability, tracing, deployment, and rollback (Plus)

Benefits

  • Competitive Salary
  • Flexible working hour
  • Hybrid Working
  • Group health insurance
  • You pick your equipment (Mac / Windows)
  • Grab Transportation
  • Free snacks & drinks (at the office)
  • Pay 100% for Job-related Training Courses

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