DevOps Engineer, GPUaaS

Singtel Group

Singapore

On-site

SGD 70,000 - 100,000

Full time

14 days+

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Benefits offered by this job

Full suite of health and wellness benefits
Ongoing training and development programs
Internal mobility opportunities

Job summary

A leading telecommunications company in Singapore is looking for a DevOps Engineer to advance their GPU-as-a-Service (GPUaaS) initiatives. The ideal candidate will design, deploy, and support large-scale GPU clusters for AI and ML workloads, alongside managing CI/CD pipelines and monitoring solutions. Applicants should have a Bachelor's degree in a related field, experience with DevOps tools, and a strong understanding of AI frameworks and GPU architectures. This role offers a range of health benefits and ongoing training opportunities.

Qualifications

  • Bachelor’s degree in Computer Science/Engineering or related field.
  • Experience with DevOps tools and practices.
  • Strong problem-solving skills in system optimization.
  • Familiarity with AI frameworks and GPU architecture.

Responsibilities

  • Design and support large-scale GPU clusters for AI and ML.
  • Manage and automate GPU resource provisioning.
  • Implement CI/CD pipelines for AI models.
  • Monitor performance and availability of clusters.
  • Conduct GPU cluster benchmarks and improve infrastructure.

Skills

DevOps tools (Jenkins, Kubernetes, Ansible, Terraform)
Scripting languages (Python, Bash)
AI frameworks (TensorFlow, PyTorch)
Strong communication skills
Technical problem solving

Education

Bachelor’s degree in Computer Science/Engineering

Tools

Monitoring solutions (Zabbix, Prometheus)
HPC workload managers (Slurm)

Job description

Singtel Digital InfraCo’s RE:AI division is building Asia’s most advanced and sustainable AI infrastructure ecosystem. RE:AI enables enterprises, research institutions, and digital-native businesses to accelerate innovation through responsible, high-performance AI compute and connectivity solutions.

Be a Part of Something BIG!

As an DevOps Engineer for SingTel’s GPU-as-a-Service (GPUaaS), you will help in implementing processes and integration of operations to advance customer’s AI and HPC capabilities. You will be exposed to both physical data center implementation and software solutions in a Singtel GPU-as-a-Service (GPUaaS). This position requires a forward-thinking individual who thrives in dynamic environments and is committed to driving continuous improvement in GPU for AI and HPC environments. This role is suitable for professionals looking to develop their expertise in DevOps and AI/HPC cloud platforms.

Responsibilities
  • Design, deploy and support large-scale, distribute GPU clusters for AI and ML workloads.
  • Manage and automate provisioning of GPU resources in both on-prem and cloud platforms.
  • Design, implement and manage CI/CD pipelines for AI models and GPU‑accelerated applications.
  • Monitor cluster usage, health, performance and availability.
  • Improve infrastructure provisioning, management, and monitoring through automation.
  • Troubleshoot compute resource system level issues such as Slurm, Kubernetes, GPU drivers, CUDA, IB networking.
  • Optimize system parameters (e.g., OS, drivers, networking, library) for AI workload performance.
  • Conduct GPU cluster benchmark and keep up with the latest advancements in GPU technology.
  • Set up monitoring and logging for GPU resources using Zabbix, Prometheus, NVIDIA DCGM and other tools.
  • Implement security best‑practices for multi‑tenant GPU‑as‑a‑Service (GPUaaS) environment.
  • Collaborate with software and administrator to streamline workflows and improve collaboration.
  • Providing technical support and guidance to users of GPU‑accelerated systems.
  • Work with senior DevOps engineer to identify bottlenecks and improve development and operational processes for AI and HPC GPU cloud.
  • Learning to solve problems in high‑performance distributed computation for AI and HPC GPU cloud computing.
  • Participate in rotational or scheduled shift work as required to support platform operations.
Requirements
  • Bachelor’s degree in Computer Science/Engineering, Information Technology, Systems Engineering, or a related field.
  • Experience with DevOps tools such as Jenkins, Kubernetes, Ansible and Terraform.
  • Solid understanding of DevOps practices, including CI/CD, automation, and monitoring.
  • Proficiency in scripting languages (e.g., Python, Bash).
  • Experience in implementing monitoring solutions such as Zabbix, Prometheus.
  • Familiarity with AI frameworks such as TensorFlow, PyTorch.
  • Understanding of cloud architectures (IaaS, PaaS), GPU architecture and NVIDIA GPUs.
  • Strong verbal, written, and presentation skills in English.
  • Team player with experience in cross‑functional coordination.
  • Strong technical problem solving and analytical skills for system optimization.
  • Understanding of how collective communications (MPI, RDMA, and NCCL) works, as well as an understanding of GPU specific acceleration works on GPU cluster.
  • Knowledge of DevOps/ML Ops technologies in GPU cluster such as Docker/containers, Kubernetes, data center deployments
  • Familiarity with Slurm or other HPC workload managers to manage GPU clusters.
  • Understanding of AI & HPC networking technologies such as InfiniBand, RoCE, DPUs.
  • System‑level experience specifically GPU‑based systems (NVIDIA GPU and SDKs)
  • Understanding how AI and HPC workloads interact with both GPU HW and SW infrastructure.
Rewards that Go Beyond
  • Full suite of health and wellness benefits
  • Ongoing training and development programs
  • Internal mobility opportunities
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