Senior AI Infrastructure Engineer (Model Training)

Omaze

Mountain View (CA)

On-site

USD 190,000 - 260,000

Full time

14 days+

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Benefits offered by this job

Competitive compensation & equity
Excellent health plans
Generous PTO & holidays
Office in Mountain View

Job summary

Kodiak Robotics, Inc. is seeking engineers to build fast model-training infra for autonomous driving data. You will design streaming data pipelines for camera, LiDAR, and radar data, and scale multi-node GPU clusters with advanced parallelism like FSDP/ZeRO.

This role centers on maximizing GPU utilization using BF16/FP8 and fused kernels. We expect 2–3 years in ML systems, strong Python and PyTorch, plus C++/CUDA/Triton knowledge.

Qualifications

  • BS, MS, or PhD in Computer Science or a related field.
  • 2–3+ years of industry experience in ML systems or infrastructure.
  • Experience with distributed training frameworks and techniques.
  • Experience building high-performance data pipelines for large-scale training.
  • Deep understanding of GPU performance and profiling tools.
  • Strong Python skills and proficiency in PyTorch internals.

Responsibilities

  • Design high-throughput data loading and streaming systems for multimodal sensor data (camera, LiDAR, radar).
  • Build and optimize distributed training infrastructure across multi-node GPU clusters.
  • Maximize utilization of accelerators through mixed-precision training and memory optimization.
  • Profile end-to-end training pipelines to identify bottlenecks across storage, network, CPU, and GPU.
  • Develop scalable dataset construction pipelines converting large raw logs to training-ready formats.
  • Partner with ML teams to scale architectures from prototype to full-cluster training runs.

Skills

Distributed ML systems
Python
C++/CUDA/Triton
GPU optimization
PyTorch internals
Data pipelines
Profiling tools

Education

BS/MS/PhD in CS

Tools

PyTorch DDP/FSDP
DeepSpeed
NCCL

Job description

Kodiak Robotics, Inc. was founded in 2018 and has become a leader in autonomous ground transportation committed to a safer and more efficient future for all. The company has developed an artificial intelligence (AI) powered technology stack purpose-built for commercial trucking and the public sector. The company delivers freight daily for its customers across the southern United States using its autonomous technology. In 2024, Kodiak became the first known company to publicly announce delivering a driverless semi-truck to a customer. Kodiak is also leveraging its commercial self-driving software to develop, test and deploy autonomous capabilities for the U.S. Department of Defense.

Kodiak's AI is only as good as the speed at which we can train it. Every improvement to our models – from GigaFusionNet to large-scale world models – depends on infrastructure that turns thousands of hours of multimodal driving data into training throughput. We are looking for engineers who make model training fast: streaming massive camera, LiDAR, and radar datasets without stalling a single GPU, sharding data and models efficiently across nodes, and extracting every FLOP from the latest hardware. If you measure your impact in tokens per second and GPU utilization, this role is for you.

In this role, you will:
  • Design high-throughput data loading and streaming systems for multimodal sensor data (camera, LiDAR, radar), including dataset formats, sharding strategies, and prefetching pipelines that keep GPUs saturated
  • Build and optimize distributed training infrastructure across multi-node GPU clusters, applying data, tensor, pipeline, and fully sharded (FSDP/ZeRO) parallelism to models that don't fit on a single device
  • Maximize utilization of modern accelerators such as NVIDIA B200s through mixed-precision training (BF16/FP8), fused kernels, memory optimization, and communication/computation overlap
  • Profile end-to-end training pipelines to find and eliminate bottlenecks across storage, network, CPU preprocessing, and GPU compute
  • Develop scalable dataset construction pipelines that convert petabytes of raw driving logs into training-ready, streamable formats
  • Partner with ML teams to scale new architectures from prototype to full-cluster training runs efficiently and reliably
What you’ll bring:
  • BS, MS, or PhD in Computer Science or a related field, and at least 2-3 years of industry experience in ML systems or infrastructure
  • Hands‑on experience with distributed training frameworks and techniques (PyTorch DDP/FSDP, DeepSpeed, Megatron, NCCL) and a strong grasp of parallelism trade-offs
  • Experience building high-performance data pipelines for large-scale training, including streaming dataset formats (WebDataset, MosaicML Streaming/MDS, or similar), sharding, and storage/network-aware loading
  • Deep understanding of GPU performance: mixed precision, memory hierarchy, kernel fusion, profiling tools (Nsight, PyTorch Profiler), and interconnects (NVLink, InfiniBand)
  • Strong Python skills and proficiency in PyTorch internals; systems-level experience (C++/CUDA/Triton) a plus
  • Passion for building the infrastructure that lets AI for the physical world train faster, scale further, and improve continuously
What we offer:
  • Competitive compensation package including equity and annual bonuses
  • Excellent Medical, Dental, and Vision plans through Kaiser Permanente, Cigna, and MetLife (including a medical plan with infertility benefits)
  • MetLife Legal Services, Identity & Fraud Protection, Hospital Indemnity Insurance, Accident Insurance, & Critical Illness Insurance
  • Flexible PTO, 10 paid holidays, and generous parental leave policies
  • Our office is centrally located in Mountain View, CA
  • Office perks: dog‑friendly, free catered lunch, a fully stocked kitchen, and free EV charging
  • Long Term Disability, Short Term Disability, Life Insurance
  • Wellbeing Benefits - Headspace through Cigna, Calm through Kaiser, One Medical, Gympass, Spring Health through Cigna, Rula (mental health navigation)
  • Fidelity 401(k)
  • Commuter, FSA, Dependent Care FSA, HSA
  • Various incentive programs (referral bonuses, patent bonuses, etc.)

The pay range listed below reflects the base salary in our SF/Silicon Valley location, across several internal levels. Actual starting pay will be based on job‑related factors including: work location, experience, relevant training, education, skill level and performance during interview. Total compensation at Kodiak includes base pay, equity, bonus and a competitive benefits package.

California Pay Range

$190,000 — $260,000 USD

At Kodiak, we strive to build a diverse community working towards our common company goals in a safe and collaborative environment where harassment of any kind is strictly prohibited. Kodiak is committed to equal opportunity employment regardless of race, ethnicity, religion, gender identity, sexual orientation, age, disability, or veteran status, or any other basis protected by applicable law.

In alignment with its business operations, Kodiak adheres to all relevant statutes, regulations, and administrative prerequisites. Accordingly, roles that carry more sensitive requirements may be limited to candidates that can satisfy additional scrutiny and eligibility for such positions may hinge on verification of a candidate’s residence, U.S. person status, and/or citizenship status. Should the position require, and Kodiak determines that a candidate’s residence, U.S. person status, and/or citizenship status necessitate an export license, bar the candidate from the position, or otherwise fall under national security‑related restrictions, Kodiak will consider the candidate for alternative positions unaffected by such restrictions, under terms and conditions set forth at Kodiak’s sole discretion, or, as an alternative, opt not to proceed with the candidate’s application. If applicable, Kodiak may provide visa sponsorship for eligible candidates.

We use a third‑party AI tool (Endorsed) to assist in the initial screening of applications. As part of the evaluation process, we provide Endorsed with job requirements and candidate‑submitted applications. Final hiring decisions are made by our human recruitment team, and no automated system makes the ultimate decision regarding hiring. Certain features of the platform may qualify it as an Automated Employment Decision Tool (AEDT) under applicable regulations. We began using Endorsed on January 1, 2026. You can review the independent bias audit report covering our use of Endorsed here. By submitting your application, you acknowledge that your application may be processed by AI systems as part of the screening and selection process. If you have any questions or would like to request a separate review of your application, please contact careers@kodiak.ai with "Separate Review Request" in the email subject line.

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