Jobs
Required Skills
AWS
Docker
Kubernetes
PyTorch
GCP
Azure
About Us:
At Fireworks, we’re building the future of generative AI infrastructure. Our platform delivers the highest-quality models with the fastest and most scalable inference in the industry. We’ve been independently benchmarked as the leader in LLM inference speed and are driving cutting-edge innovation through projects like our own function calling and multimodal models. Fireworks is a Series C company valued at $4 billion and backed by top investors including Benchmark, Sequoia, Lightspeed, Index, and Evantic. We’re an ambitious, collaborative team of builders, founded by veterans of Meta Py Torch and Google Vertex 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:
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Design and implement scalable infrastructure for large-scale model training workloads
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Develop and maintain distributed training pipelines for LLMs and multimodal models
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Optimize training performance across multiple GPUs, nodes, and data centers
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Implement monitoring, logging, and debugging tools for training operations
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Architect and maintain data storage solutions for large-scale training datasets
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Automate infrastructure provisioning, scaling, and orchestration for model training
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Collaborate with researchers to implement and optimize training methodologies
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Analyze and improve efficiency, scalability, and cost-effectiveness of training systems
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Troubleshoot complex performance issues in distributed training environments
Minimum Qualifications:
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Bachelor's degree in Computer Science, Computer Engineering, or related field, or equivalent practical experience
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3+ years of experience with distributed systems and ML infrastructure
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Experience with Py Torch
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Proficiency in cloud platforms (AWS, GCP, Azure)
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Experience with containerization, orchestration (Kubernetes, Docker)
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Knowledge of distributed training techniques (data parallelism, model parallelism, FSDP)
Preferred Qualifications:
- Master's or Ph
D in Computer Science or related field:
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Experience training large language models or multimodal AI systems
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Experience with ML workflow orchestration tools
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Background in optimizing high-performance distributed computing systems
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Familiarity with ML DevOps practices
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Contributions to open-source ML infrastructure or related projects
Total compensation for this role also includes meaningful equity in a fast-growing startup, along with a competitive salary and comprehensive benefits package. Base salary is determined by a range of factors including individual qualifications, experience, skills, interview performance, market data, and work location. The listed salary range is intended as a guideline and may be adjusted.
Base Pay Range (Plus Equity)$175,000—$220,000 USD
Why Fireworks AI?
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Solve Hard Problems: Tackle challenges at the forefront of AI infrastructure, from low-latency inference to scalable model serving.
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Build What’s Next: Work with bleeding-edge technology that impacts how businesses and developers harness AI globally.
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Ownership & Impact: Join a fast-growing, passionate team where your work directly shapes the future of AI—no bureaucracy, just results.
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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.
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About Fireworks AI

Fireworks AI
Series AFireworks AI provides generative AI inference and fine-tuning platform for developers and enterprises. The company offers high-performance API services for running large language models and other generative AI workloads.
51-200
Employees
San Francisco
Headquarters
$1.2B
Valuation
Reviews
3.8
26 reviews
Work Life Balance
3.5
Compensation
4.2
Culture
3.8
Career
4.0
Management
3.6
79%
Recommend to a Friend
Pros
Supportive team and management
Opportunity for career growth
Interesting projects and challenges
Cons
Internal communication could improve
Career progression could be clearer
Work-life balance varies by team
Interview Experience
43 interviews
Difficulty
3.1
/ 5
Duration
14-28 weeks
Offer Rate
41%
Experience
Positive 60%
Neutral 21%
Negative 19%
Interview Process
1
Phone Screen
2
Technical Interview
3
Hiring Manager
4
Team Fit
Common Questions
Technical skills
Past experience
Team collaboration
Problem solving
News & Buzz
Fireworks AI Positions Open-Source Infrastructure as Low-Cost, Privacy-Focused Backbone for Personal AI Agents - TipRanks
Source: TipRanks
News
·
6w ago
This CEO left Meta and built a $4B AI startup by rejecting the one-size-fits-all approach - The Business Journals
Source: The Business Journals
News
·
10w ago
Fireworks, Metropolis and Hippocratic AI Lead Funding Rounds - PYMNTS.com
Source: PYMNTS.com
News
·
18w ago
Fireworks AI raises $250M at $4B valuation to help enterprises with AI inference workloads - SiliconANGLE
Source: SiliconANGLE
News
·
20w ago