Cloud Storage Integration Engineer (Storage / Image / Registry)

Bitdeer Technologies Group

$130K — $155K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years in storage engineering, with senior-level experience preferred
  • Deep knowledge of distributed file systems and their internals
  • Hands-on experience with production distributed storage solutions
  • Expertise in performance tuning for parallel I/O
  • Strong Linux systems proficiency and automation skills, especially in Python or Go
  • Familiarity with high-performance storage networking technologies like NVMe and RDMA is advantageous
  • Experience in HPC/AI storage and multi-region storage setups is a strong plus.

Responsibilities

  • Design and integrate distributed file systems into the GPU cloud for optimized AI I/O patterns.
  • Manage end-to-end storage integration, including provisioning and multi-tenant isolation.
  • Tune throughput and latency for large-scale data operations; benchmark for various workloads.
  • Architect solutions for multi-region data access and replication consistency.
  • Oversee the management and distribution of GPU drivers and container images.
  • Develop monitoring and capacity planning tools while minimizing points of failure.
  • Collaborate with Compute, Network, and Control Plane teams for streamlined operations.

Benefits

  • Flexible work environments to promote work-life balance
  • Opportunities for professional development and training
  • Access to advanced technologies and innovative projects
  • Strong team culture emphasizing collaboration and support
  • Health and wellness programs tailored for employees
Full Job Description
Position Overview

GPU training and inference at 10,000+ GPU, multi-region scale depend on high-throughput, low-latency storage that can sustain massive parallel I/O. We are looking for an engineer who deeply understands distributed file systems and can integrate distributed / parallel storage systems into our GPU cloud - covering performance, multi-tenancy, and reliability - while also owning the image / driver / registry pipeline on the node-delivery critical path.

Key Responsibilities
  • Design and integrate distributed / parallel file systems (e.g. Ceph, Lustre, GPFS / Spectrum Scale, BeeGFS, JuiceFS) into the GPU cloud, optimized for AI training / inference I/O patterns.
  • Own end-to-end distributed-storage integration: provisioning, mounting, multi-tenant isolation, quota, and lifecycle within the platform / control plane.
  • Tune storage throughput and latency for large-scale parallel access (dataset loading, checkpointing); benchmark across GPU SKUs and workloads.
  • Architect multi-region storage: data locality, replication / consistency, durability (failure domains), and cross-region access.
  • Own golden images, templates, GPU drivers / CUDA, and the container / image registry, including versioned release and multi-region distribution. (Secondary scope.)
  • Build monitoring, capacity planning, and runbooks; eliminate single points of failure.
  • Partner with Compute (delivery), Network (storage fabric / RDMA), and Control Plane (provisioning / quota) teams.

Job Requirement:
  • 3+ years (Senior 6+) in storage engineering or platform infrastructure, with hands-on distributed / parallel file system experience.
  • Strong understanding of distributed file system internals - data / metadata separation, replication, consistency models, POSIX vs object semantics.
  • Proven experience integrating and operating distributed storage in production (e.g. Ceph, Lustre, GPFS / Spectrum Scale, BeeGFS, JuiceFS, MinIO).
  • Performance tuning for high-throughput / parallel I/O; familiarity with NVMe, RDMA / RoCE storage networking, and caching is a strong plus.
  • Strong Linux systems depth and automation skills (Python / Go, CI / CD).
  • HPC / AI storage or multi-region storage experience a strong plus.

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