jobs in NETWORK GUARD PTE. LTD.

全职 Staff Software Engineer - AI 工作, 薪水 up to SGD 13,500, NETWORK GUARD PTE. LTD. Central Region (Singapore) 公司招聘中 - Ricebowl

Staff Software Engineer - AI

NETWORK GUARD PTE. LTD.

SGD13,500 - SGD13,500 每月

Central Region (Singapore)

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工作地点

  • 600 NORTH BRIDGE ROAD Central Region (Singapore) Singapore

职位描述

岗位职责

We're building production conversational AI — LLM agents that hold real conversations at scale, answer from a grounded knowledge base, and know their limits. We're looking for a hands-on Lead AI Engineer to own it end to end: the AI behavior, the infrastructure, and the full stack around it.

We're a small, focused team tackling a big problem — making AI that's accurate, grounded, and trustworthy in production. That means high ownership, fast decisions, and direct impact: what you build ships and runs live.

This is a builder-leader role. You write code, make the architecture calls, and set the technical direction for the team.

What you'll do

  • Own the AI system — LLM agents, retrieval-augmented generation (RAG), and guardrails. Drive answer quality, retrieval relevance, and safe behavior.

  • Debug and improve AI behavior — diagnose why a model hallucinated, mis-routed, or responded incorrectly, and design evaluations (LLM-as-judge and others) to measure and prevent it. Turn vague "it answered badly" reports into measured fixes.

  • Lead platform engineering — design and ship the services, data pipelines, and tooling that let the product scale reliably.

  • Own infrastructure as code — Terraform across multiple environments, CI/CD, and a server-less cloud footprint.

  • Build full-stack — backend services, an internal web app, and data-processing pipelines.

  • Own security and data protection — treat it as first-class: data isolation, least-privilege access, encryption, careful handling of credentials and sensitive user data. Security is a core requirement of everything we ship, not an afterthought.

  • Set technical direction — review designs and code, define quality bars, and keep production healthy.

Must have

  • You've shipped an LLM application to production — agents and/or retrieval-augmented generation (RAG), with guardrails and a vector/embeddings layer. Not just prototypes.

  • Strong prompt engineering and AI debugging — you can reason about model behavior and build evaluations to measure it.

  • Terraform / infrastructure as code and solid AWS depth (serverless compute, NoSQL, event-driven flows, IAM).

  • Full-stack engineering — TypeScript/Node, a modern web framework (React/Next.js), and Python for data work.

  • Strong security and data-protection fundamentals — you build systems that handle sensitive user data safely: data isolation, least-privilege access, encryption, and secrets management.

  • Ownership and technical leadership — able to lead a project and keep a production system reliable.

Nice to have

  • Experience with Amazon Bedrock (agents, knowledge bases, guardrails) — a strong advantage.

  • SaaS / multi-tenant platform design.

  • Production observability and cost optimization for AI workloads.

What success looks like

  • The AI answers more questions correctly and grounded, and stays within its limits — measured, not guessed.

  • The platform scales smoothly, with safe and repeatable infrastructure changes.

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