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AI Infrastructure Engineer - LCYL

AI Infrastructure Engineer - LCYL

the supreme hr advisory pte. ltd.
3-6 Years
SGD 5,000 - 7,000 per month
  • Posted 5 days ago
  • Be among the first 10 applicants

Job Description

AI Infrastructure Engineer

5 days, Mon - Fri 8.30am to 5.30pm

Salary: $5,000 to $7,000

Location: 2 Kaki Bukit Ave 1, Singapore 417938

Job scopes:

Compute & Cluster Management

  • Architect, configure, and maintain high-density multi-GPU compute clusters (e.g. NVIDIA HGX/DGX architectures).
  • Implement and manage container orchestration platforms (Kubernetes, Slurm, or Ray) optimized for AI/ML distributed workloads.
  • Monitor GPU health, telemetry, utilization, and thermals minimize idle compute time and prevent single-node bottlenecks.

High-Performance Networking & Storage

  • Design and optimize low-latency, lossless network fabrics supporting distributed training (InfiniBand, RoCE v2, NVLink, spine-leaf topologies).
  • Configure and scale high-throughput parallel file systems and object storage (e.g. Lustre, GPFS/IBM Spectrum Scale, Ceph, MinIO, NVMe-oF) to feed high-speed data pipelines.

Automation & Infrastructure as Code (IaC)

  • Build and manage automated deployment pipelines using Terraform, Ansible, Helm, or Pulumi.
  • Maintain standard golden images, Linux OS tuning (kernel parameters, NUMA node binding, GPU drivers, CUDA/cuDNN libraries), and firmware updates.

Operations, Observability & Performance

  • Set up end-to-end monitoring, alerting, and metrics dashboards (Prometheus, Grafana, DCGM exporter, NVIDIA System Management Interface).
  • Partner with AI/ML engineering teams to diagnose network bottlenecks, NCCL communication latency, and I/O wait states during distributed training jobs.
  • Lead incident response, root-cause analysis (RCA), and disaster recovery plans for mission-critical AI environments.

Requirements:

  • Operating Systems: Deep expertise in Linux systems administration, kernel tuning, and shell scripting (Bash/Python).
  • Accelerated Compute: Strong understanding of GPU hardware architectures, CUDA runtimes, and PCIe/NVLink topologies.
  • Orchestration & Workload Scheduling: Hands-on experience with Kubernetes (GPU operator, device plugins) and/or HPC schedulers (Slurm, Run:ai, Ray).
  • High-Speed Networking: Proven experience with RDMA (RoCE v2 /InfiniBand), PFC (Priority Flow Control), and ECN configurations.
  • Storage Systems: Familiarity with high-IOPS, low-latency shared storage architectures for AI datasets and model checkpoints.
  • Automation: Proficiency in Infrastructure as Code (Terraform) and configuration management (Ansible).
  • Bachelor's Degree in Computer Science, Information Technology, Computer
    Engineering, or equivalent practical experience.
  • 3-6+ years of hands-on experience in infrastructure engineering, high-performance computing (HPC), DevOps, or cloud infrastructure.
  • Relevant certifications are a plus (e.g., CKA/CKAD, NVIDIA Certified
    Associate/Professional, AWS/Azure/GCP Solutions Architect).


Cheong Yeat Long | R25145358

The Supreme HR Advisory Pte Ltd | EA 14C7279

More Info

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Key Skills

RoCE v2

IBM Spectrum Scale

Ray

NVIDIA System Management Interface

NVLink

Slurm

NVIDIA HGX DGX architectures

DCGM exporter

NVMe-oF

MinIO

cuDNN

NCCL

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