Member of Technical Staff
fireworksai
Fireworks AI is a Series C company building the fastest inference platform for generative AI. If you want to start your career working on infrastructure that actually ships at scale, this role puts you in front of real problems: distributed training pipelines, cloud systems, and machine learning ops that matter.
You'll design and build backend infrastructure for training, inference, and data processing. You'll work on scalable systems, help shape technical decisions, and contribute to best practices for large-scale ML. This isn't junior-only work—you'll collaborate with engineers from Meta PyTorch and Google Vertex AI who founded the company.
Look for engineers with solid fundamentals in backend systems, cloud platforms (Kubernetes, distributed systems), or Python. You don't need prior ML experience, but you should be curious about how inference and training pipelines work. A portfolio of past projects, even academic ones, helps show your thinking.
Apply directly on CareerJumpShip. Include your resume, a brief note about why infrastructure interests you, and links to any code or projects you're proud of. Fireworks reviews applications on a rolling basis.
About this role
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 PyTorch and Google Vertex AI. The Role: As a Training Infrastructure Engineer, you'll design, develop, and maintain large-scale backend and cloud-native infrastructure to support distributed machine learning training, inference, and data processing pipelines for our generative AI platform. You'll architect scalable, resilient backend infrastructure, lead technical design discussions, mentor engineers, and establish best practices for large-scale machine learning systems. Key Responsibilities: Architect and build scalable, resilient backend infrastructure to support distributed training, inference, and data processing pipelines Lead technical design discussions, mentor engineers, and establish best practices for large-scale machine learning systems Design and implement core backend services with a focus on efficiency and low latency Drive infrastructure optimization initiatives for compute cost, storage lifecycle management, and network performance Collaborate with machine learning, DevOps, and product teams to translate research and product requirements into robust infrastructure solutions Evaluate and integrate cloud-native and open-source technologies such as Kubernetes, Ray, Kubeflow, and MLFlow to enhance platform reliability Own end-to-end systems from design to deployment, emphasizing reliability, fault tolerance, and operational excellence Minimum Qualifications: Bachelor's degree or equivalent in Computer Science or related field plus four (4) years of experience in software engineering or related role 4 years of experience designing, building, and optimizing large-scale backend infrastructure and distributed data systems (e.g., PostgreSQL, MySQL, DynamoDB, Apache Spark, Apache Flink, Apache Kafka) in cloud environments (AWS, GCP, Azure, or equivalent), including cloud-native platforms, core infrastructure components, and optimization techniques (caching, indexing, sharding, replication, transactions, ACID) 4 years of experience with major server-side programming languages and frameworks (e.g., Python, C++, Go, TypeScript) 4 years of experience writing technical design documentation, leading cross-functional projects, and collaborating with cross-functional teams to achieve business impact 3 years of experience developing and maintaining data processing and API systems, including client-server communication frameworks (e.g., gRPC, Thrift) 3 years of experience conducting A/B testing and scientific experimentation (e.g., Statsig, Meta Deltoid, Optimizely) to measure software impact 3 years of experience conducting coding interviews and providing systematic feedback for engineering candidates 2 years of experience with cloud-native tools and infrastructure, such as Docker and Kubernetes 2 years of experience defining and implementing data-driven metrics to support company or team goals How to Apply: Submit resume and apply online at http://www.fireworks.ai/careers and search for job by title. Fireworks AI is an equal-opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all innovators. 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? 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.
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