Lead ML Engineer
DTEL Engineering & Consultants Inc
Blue Ash, OH (In Person)
Full-Time
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Job Description
REQUIRED SKILLS
Languages:
Python (required); SQL; optionalJava/Scala ML/MLOps:
MLflow (or equivalent), model registry, monitoring, evaluation pipelinesData:
Spark, DataFrames, data modeling fundamentals, feature engineeringDevOps:
Git, CI/CD, Docker; Kubernetes, Terraform (optional)Cloud:
Azure, logging/monitoring Experience with MLOps practices, including model versioning, monitoring, and CI/CD for ML pipelines.GOOD TO HAVE
Understanding of Data Science models Exposure to Deep Learning frameworks such as TensorFlow or PyTorch Solid understanding of feature engineering, model evaluation, and experimentation.PREFERRED TRAITS
Strong communication and storytelling skills with data Ability to work in a collaborative and fast-paced environment Passion for solving complex business problems using data Roles & Responsibilities ML Engineering & Delivery Lead the design and implementation of production ML pipelines for training, batch inference, and real-time/near-real-time scoring. Translate Data Science prototypes into robust, maintainable services and workflows with strong testing, observability, and reliability. Build and manage feature engineering workflows, feature stores (where applicable), and reusable ML components. Drive model packaging and deployment patterns (containers, serverless, managed endpoints) and optimize for performance and cost. MLOps Implement CI/CD for ML (model versioning, automated testing, promotion gates, rollback strategies) using Azure DevOps / GitHub Actions integrated with Databricks Leverage MLflow (Databricks native) for experiment tracking, model registry, and lifecycle management Establish best practices for model monitoring: data drift, concept drift, model degradation, and alerting. Define and enforce guardrails for responsibleAI:
bias checks, explainability, privacy controls, and auditability. Data & Platform Collaboration Partner with Data Engineering on data quality, lineage, and availability to ensure reliable model inputs. Work with Cloud/Platform teams to ensure scalable infrastructure (compute, networking, IAM, secrets, logging). Influence target architecture and technology decisions for the ML platform roadmap. Leadership & Mentoring Provide technical leadership and mentorship to ML Engineers and junior team members. Conduct design reviews, code reviews, and establish engineering standards. Coordinate delivery plans, estimate work, and manage technical risks and dependencies.Similar remote jobs
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