Applied Machine Learning Platform Engineer
buzzsolutions
If you want to build real infrastructure that scales, this role gets you there early. You'll work on the databases, pipelines, and tooling that power computer vision systems used across power grid infrastructure. It's backend and platform work that directly supports ML teams—the kind of foundation experience that compounds over a career.
You'll design and maintain training infrastructure for computer vision workloads, implement distributed training pipelines across multiple GPUs and nodes, and build robust data pipelines for ML development. You'll also design database schemas for large training datasets, manage annotations and model artifacts, and implement feature stores and data versioning systems. This is hands-on infrastructure work alongside experienced ML engineers who'll give you autonomy to drive projects while supporting your growth.
This fits you if you have a computer science, engineering, or related background, some experience with Python and cloud platforms, and curiosity about how ML systems actually run at scale. A portfolio or project showing data pipeline or infrastructure work helps.
Apply through CareerJumpship to submit your resume and a note about what draws you to platform engineering.
About this role
About Us Buzz is revolutionizing the analytics and maintenance of power grid infrastructure through our advanced AI solutions. Our computer vision systems analyze critical infrastructure to enhance safety, reliability, and operational efficiency across the power grid network. Job Description We're looking for an entry/mid-level Applied Machine Learning Platform Engineer to join our computer vision team and help improve the databases, cloud infrastructure, and tooling our team builds on. You'll build tooling and infrastructure to help scale our training and data pipelines. You'll work within a team of experienced ML engineers with the autonomy to drive your own projects and the support to keep growing. Responsibilities Design, build, and maintain scalable training infrastructure for computer vision workloads Implement and manage distributed training pipelines (multi-GPU, multi-node) to support large-scale model training and hyperparameter tuning Build and maintain robust data pipelines for ML development Design database schemas and storage strategies for managing large training datasets, annotations, and model artifacts Implement and manage feature stores, data versioning, and experiment tracking to support reliable model iteration Automate existing analysis workflows Maintain clear documentation for platform components, data contracts, and deployment processes Communicate infrastructure decisions, tradeoffs, and system limitations clearly to ML engineers and stakeholders Conduct thorough code reviews and write integration tests for ML pipelines Qualifications & Experience 2-4 years of industry experience in platform, backend, data, or MLOps engineering roles Python proficiency — idiomatic code, type hints, async patterns, packaging, and performance-aware implementation Strong software engineering fundamentals — testing, code review, API design, component-level system design Hands-on experience building and operating distributed cloud machine learning infrastructure Designing and maintaining scalable training infrastructure, managing ML platform reliability, optimizing data pipelines for throughput at scale Experience with database design and data systems for ML workloads — schema design, query optimization, and storage strategies for large-scale datasets Excels at workflow orchestration and automation Solid proficiency in Python and core ML tooling: Python ecosystem: Pytest, UV, FastAPI, Pydantic Tooling: Git, Docker, UV Tracking: MLflow, Weights & Biases, or equivalent Automation: Github Actions, CI/CD, Prefect or equivalent Infrastructure: AWS, GCP, Kubernetes, Helm, Terraform or equivalent Databases: postgres, DynamoDB, Bigtable * Buzz Solutions does not provide Visa sponsorship for work authorizations in the United States at this time *
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