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Luma AI

Software Engineer - Data Infrastructure

LocationRedwood City, CA
Work modehybrid
Typefull-time
DepartmentResearch & AI
Company size11+ people
First seen2w ago
Last seen5d ago
About the Role
As a Data Infrastructure Engineer in Research at Luma, you will play a critical role in building and scaling the data infrastructure that supports our cutting-edge multimodal AI systems. Your work will focus on developing high-throughput, large-scale data processing pipelines tailored for machine learning research and internal ML platform needs. You will collaborate closely with ML researchers and product teams to create reliable, efficient, and easy-to-use data infrastructure that empowers innovation and accelerates development. This role requires a strong foundation in distributed systems and data engineering, with an emphasis on supporting complex machine learning workflows rather than traditional product data infrastructure.
Responsibilities
Responsibilities
•
Build and maintain scalable data infrastructure for high-throughput machine learning workflows
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Collaborate with ML researchers and product teams to ensure data systems meet evolving needs
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Develop and optimize large-scale data pipelines and batch processing jobs
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Contribute to the architecture and implementation of reliable, high-performance data platforms
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Integrate open-source tools and continuously improve data infrastructure through monitoring and tuning
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Participate in cross-functional projects to improve data reliability, scalability, and operational excellence
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Support the evaluation and adoption of new programming languages and frameworks relevant to data infrastructure
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Engage in continuous improvement of data infrastructure through monitoring, troubleshooting, and performance tuning
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Collaborate with research & engineering teams to help define and refine best practices for data infrastructure development
Qualifications
Requirements
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Proficiency in Python (or similar languages with willingness to learn Python) and experience with large-scale, high-throughput data infrastructure
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Familiarity with distributed computing frameworks (e.g., Ray, Spark, Beam)
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Ability to design and optimize data pipelines for ML research and internal teams
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Strong problem-solving skills and understanding of data engineering at scale
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Collaborative, product-focused mindset; comfortable in fast-paced environments
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Experience sourcing, integrating, and optimizing data from diverse and large datasets
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Comfortable working in a fast-paced, product-focused environment with a strong execution mindset
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Open to candidates across seniority levels, from mid-level individual contributors to senior engineers and managers.
Nice to have
Nice to have
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Prior experience working with complex data infrastructure or AI/ML platforms highly desirable
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Experience with open source data infrastructure projects is a plus
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Experience working in the robotics industry preferred
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