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Member of Technical Staff, AI Training Infrastructure

Evals & Benchmarks2mo ago
Source verified: this exact posting was present on Fireworks AI’s careers feed on . View employer source →

What the posting asks for

Names
PyTorch, Kubernetes
Doctorate
Mentioned, without saying whether it is needed
Experience
3+ years asked for

Read out of the employer's own description. Absence means the posting does not say, not that the answer is no.

The role

About Us:

Fireworks is the platform for specialized intelligence, enabling companies to build, train, and serve AI models tailored to their own data, workflows, and products. Founded by the team behind PyTorch and backed by AMD, Atreides, Benchmark Capital, Index Ventures, Lightspeed, NVIDIA, Sequoia Capital, and TCV, Fireworks powers production AI with hundreds of state-of-the-art open models across text, image, embedding, audio, and multimodal workloads. Today, Fireworks is a Series D company valued at $17.5 billion, bringing together an ambitious, collaborative team that's building the future of enterprise AI.

The Role:

As a Training Infrastructure Engineer, you'll design, build, and optimize the infrastructure that powers our large-scale model training operations. Your work will be essential to developing high-performance AI training infrastructure. You'll collaborate with AI researchers and engineers to create robust training pipelines, optimize distributed training workloads, and ensure reliable model development.

Key Responsibilities:

  • Design and implement scalable infrastructure for large-scale model training workloads

  • Develop and maintain distributed training pipelines for LLMs and multimodal models

  • Optimize training performance across multiple GPUs, nodes, and data centers

  • Implement monitoring, logging, and debugging tools for training operations

  • Architect and maintain data storage solutions for large-scale training datasets

  • Automate infrastructure provisioning, scaling, and orchestration for model training

  • Collaborate with researchers to implement and optimize training methodologies

  • Analyze and improve efficiency, scalability, and cost-effectiveness of training systems

  • Troubleshoot complex performance issues in distributed training environments

Minimum Qualifications:

  • Bachelor's degree in Computer Science, Computer Engineering, or related field, or equivalent practical experience

  • 3+ years of experience with distributed systems and ML infrastructure

  • Experience with PyTorch

  • Proficiency in cloud platforms (AWS, GCP, Azure)

  • Experience with containerization, orchestration (Kubernetes, Docker)

  • Knowledge of distributed training techniques (data parallelism, model parallelism, FSDP)

Preferred Qualifications:

  • Master's or PhD in Computer Science or related field

  • Experience training large language models or multimodal AI systems

  • Experience with ML workflow orchestration tools

  • Background in optimizing high-performance distributed computing systems

  • Familiarity with ML DevOps practices

  • Contributions to open-source ML infrastructure or related projects

Why Fireworks?

  • Solve Hard Problems: Tackle challenges at the forefront of AI infrastructure, from low-latency inference to scalable model serving.

  • Build What’s Next: Work with bleeding-edge technology that impacts how businesses and developers harness AI globally.

  • Ownership & Impact: Join a fast-growing, passionate team where your work directly shapes the future of AI—no bureaucracy, just results.

  • Learn from the Best: Collaborate with world-class engineers and AI researchers who thrive on curiosity and innovation.

Fireworks AI is an equal-opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all innovators.

Published by Fireworks AI on their own careers page and reproduced here unedited. Read it at Fireworks AI.

Apply at Fireworks AI → Applications go directly to Fireworks AI. This board does not sit in between, take a fee from you, or see your application.

What this listing does not tell you

Listed 70 days, which is longer than most. Of the 114 evals and benchmarks roles this board has watched from listing to removal, 62% were gone from their employer's careers page by day 70, and the median came down after 56 days. That is a description of other listings that have already ended, not a prediction about this one: this board records when a listing disappears, never why, and a posting still up is not on a clock it can see.

Fireworks AI has 9 roles open on this board, 6 of them in evals and benchmarks.

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