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AI/ML Engineer

Red Hat
Singapore Posted Aug 5, 2026
On-site

About this role

AI/ML Engineer

The Singapore AI Center of Excellence (COE) is a dedicated engineering and R&D hub focused on Enterprise and Sovereign AI. Our mission is to help organizations move AI workflows cleanly into production through two main paths: creating reusable software architectures that solve common industry problems, and contributing code directly to upstream open-source projects to fix enterprise gaps in system deployment, runtime tuning, and platform management.

Basing our engineering team in Singapore creates a close feedback loop between customers, partners, and core product teams. This direct connection keeps our development roadmaps relevant, speeds up solution delivery, and strengthens our ability to co-innovate across the region.

Role Overview

The AI/ML Engineer is a highly technical, hands-on role at the intersection of Enterprise AI and client-facing architecture. As part of our Customer Engineering function, you will write production-grade solution blueprints alongside strategic customers and technology partners. Your mission is to solve immediate, high-stakes operational bottlenecks in the APAC region by delivering repeatable, extensible, and open-sourced AI Quickstarts that show the industry how to solve complex challenges.

In this team, career growth and seniority are defined purely by your technical competence, architectural depth, and ability to deliver end-to-end solutions autonomously in highly ambiguous environments. There is no expectation of team management, project coordination, or formal talent mentorship; your progression is driven entirely by engineering impact.

What You Will Do:

  • Enterprise-Minded Blueprinting: Design and build comprehensive, production-ready architecture blueprints and reference codebases. These blueprints must naturally take into account critical enterprise requirements—including systems-level hardening, infrastructure scalability, and network isolation boundaries—without you needing to perform the last-mile hands-on production deployment yourself.
  • Open-Source AI Quickstarts: Package repeatable, extensible technical architectures as open-sourced AI Quickstarts to solve complex, real-world industry problems and accelerate ecosystem adoption.
  • Co-Development & Integration: Collaborate with external engineering teams (such as semiconductor partners, regional AI programs, and software vendors) to validate joint-architecture blueprints, ensuring stable integrations across the system

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