HYR Global Source Inc
Linkedin · Posted 20d ago
Sr. ML Engineer :: Austin, TX
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Position Name : Sr. ML EngineerLocation: Austin, TXPosition Type: Fulltime/W2/C2CRole SummaryWe are looking for a hands-on Senior ML Engineer to help productionize machine learning solutions for manufacturing use cases involving deployment and pipeline buildout. This role will sit at the intersection of model operationalization, data/feature pipelines, and CI/CD, helping us move from proof of concept to repeatable, governed, production-ready delivery. The role is aligned to our current direction of hardening Databricks-based MLOps infrastructure, MLflow-based lifecycle management, and CI/CD-driven promotion of models and workflows into operational use.What This Role Will Do
- Build and operationalize ML pipelines in Databricks to support training, validation, batch scoring, and deployment workflows.
- Implement and maintain CI/CD pipelines for ML code, data pipelines, and model promotion using Git-driven development practices and automated quality checks.
- Partner with data scientists and data engineers to turn experimental models into production candidates with clear dependencies, reproducible artifacts, and governed deployment paths.
- Build and manage feature/data pipelines that support model retraining, re-scoring, monitoring, and downstream consumption.
- Establish model lifecycle controls using MLflow and Unity Catalog, including experiment tracking, model registration, versioning, lineage, and controlled promotion across environments.
- Improve reliability of ML systems through data validation, testing, monitoring, and automation that reduce manual intervention and deployment risk.
- Support deployment patterns that can extend from lab and cloud development into plant-ready operational workflows over time.
- Productionize machine learning models developed by the data science team for manufacturing applications.
- Design, build, and maintain reusable ML workflows for data preparation, feature engineering, model training, evaluation, deployment, and inference.
- Own CI/CD patterns for ML and pipeline assets, including unit tests, smoke tests, code quality checks, and release automation.
- Manage Databricks jobs and workflows for retraining, scoring, orchestration, and scheduled execution.
- Package and promote versioned model artifacts with traceability to code commits, data snapshots, and registry versions.
- Collaborate across ML, data engineering, cloud/platform, and manufacturing stakeholders to ensure deployed solutions are scalable, supportable, and aligned to production constraints.
- Bachelor s, Master s, or equivalent experience in Computer Science, Data Science, Engineering, or a related technical field.
- Strong software engineering skills in Python and production-quality development practices.
- Experience deploying machine learning models into production environments.
- Strong experience with Databricks, including jobs/workflows, repos, and MLflow-based experimentation and model lifecycle management.
- Experience building CI/CD pipelines for ML or data products using Git-based workflows and automated testing.
- Strong understanding of data pipelines, feature engineering, batch processing, and pipeline orchestration.
- Experience working across model development, deployment, and operational support in cross-functional environments.
- Experience with manufacturing, industrial IoT, quality, or plant-floor analytics use cases.
- Experience with model governance, lineage, reproducibility, and controlled promotion of ML assets across environments.
- Experience designing resilient ML pipelines that can handle changing upstream data conditions and retraining needs.
- Familiarity with model monitoring, validation checks, and operational observability.
- Experience supporting the transition from PoC or R&D models into production-ready solution patterns.
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