At Lumenalta, we partner with forward-thinking organizations to build technology solutions that scale, delight users, and accelerate business growth. Our global teams bring curiosity, commitment, and technical excellence to every project. We value transparency, autonomy, and impact—empowering every team member to do their best work.
We’re seeking an experienced MLOps Engineer responsible for operationalizing machine learning at scale on the Databricks platform. This role bridges data engineering and ML, building the infrastructure and workflows that take models from experimentation to reliable production deployments.
Future Opportunity Role – Talent Pipeline
This is a future opportunity role. We continuously meet talented engineers to support upcoming client projects. While there may not be an immediate opening, qualified candidates may be considered for future engagements.
Задачи
Design and maintain MLflow-based workflows for experiment tracking, model registry, versioning, and lifecycle management
Build and manage Feature Store infrastructure to enable reusable, consistent feature pipelines across teams and use cases
Develop model deployment pipelines, including serving infrastructure, A/B testing support, versioning, and rollback strategies
Implement CI/CD pipelines tailored for ML workflows, including automated testing, validation gates, and deployment triggers
Orchestrate distributed model training on Databricks, optimizing for compute efficiency, reproducibility, and cost
Monitor deployed models for data drift, performance degradation, and system health, triggering automated retraining workflows as needed
Collaborate with Data Scientists and Data Engineers to reduce friction between experimentation environments and production
Требования
3–5+ years in MLOps, ML platform engineering, or DevOps for ML, with proven production ML deployments
Hands-on expertise with MLflow for tracking, registry, and project management within Databricks or standalone environments
Experience building and consuming Feature Store solutions (Databricks Feature Store or equivalent)
Proven experience deploying and serving ML models at scale, including real-time and batch inference patterns
Ability to design automated pipelines for model training, validation, and deployment using modern CI/CD tooling
Strong familiarity with Databricks for distributed training, job orchestration, and cluster management
Knowledge of model monitoring practices, including drift detection, alerting, and retraining triggers
Why Lumenalta is an amazing place to work at
At Lumenalta, you can expect that you will
Be 100% dedicated to one project at a time so that you can innovate and grow
Be a part of a team of talented and friendly senior-level developers
Work on projects that allow you to use leading tech
Location
This is a fully remote position
however, candidates must be based in regions that align with the Pacific, Central, or Eastern U.S. time zones to ensure effective collaboration with client and team schedules
Application Deadline
Applications will be accepted until **August 23, 2026**. Candidates can expect feedback by **August 31, 2026**
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careerОсновная публикация · 2026-08-09
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