About this opportunity
BrothersTech lists this Machine Learning Engineer opportunity in town of florida, New York. Review the employer’s description below for duties, qualifications and application requirements.
Job description
Job Title: Sr ML Ops Engineer
Location: Davie, FL — Hybrid
VISA :- Only US Citizen
We are looking for a highly skilled MLOps Engineer to support the end-to-end machine learning lifecycle, from experimentation to production deployment.
This role focuses on building scalable, reliable, and automated ML infrastructure, enabling data science teams to deliver production-ready models efficiently and confidently.
Key Responsibilities
Design, build, and maintain production-grade ML pipelines on Databricks
Operationalize ML models, including deployment, monitoring, and lifecycle management
Build and maintain CI/CD pipelines for ML workflows
Develop and manage real-time and streaming data pipelines
Collaborate closely with Data Scientists to productionize models efficiently
Implement model versioning, experiment tracking, and reproducibility
Define and enforce ML best practices, governance, and quality standards
Monitor model performance and data drift; implement automated retraining strategies
Optimize performance, scalability, and cost of distributed workloads
Contribute to platform design for low-latency inference and scalable serving
Required Qualifications (Must-Have)
Strong experience with Databricks (Workflows, MLflow, Delta Lake)
Deep expertise in Apache Spark (batch and streaming)
Advanced Python skills (production-quality code)
Hands-on experience with streaming / real-time systems
Proven experience designing and implementing CI/CD pipelines
Strong understanding of the ML lifecycle (training ? deployment ? monitoring ? retraining)
Experience building scalable, distributed data and ML pipelines
Nice-to-Have Skills
Experience with Snowflake
Knowledge of Kubernetes
Experience with Docker
Familiarity with Terraform or other Infrastructure as Code tools
Experience with feature stores (e.g. Snowflake or Databricks Feature Store, etc.)
Experience with event-driven architectures (Kafka)
Experience with model serving frameworks and low-latency APIs
Monitoring and observability tools (ELK or similar)
Familiarity with A/B testing / experimentation frameworks
Experience with LLM deployment and serving
Knowledge of RBAC, security, and governance in data/ML platforms
Experience in cloud environments (Azure preferred)
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Who can apply
Review the original listing for work authorization, qualifications and employer requirements.