Machine Learning Engineer

ImagineSoftware™ (Technology Partners, LLC)

Charlotte (NC)

On-site

USD 120,000 - 180,000

Full time

7 hours ago
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Job summary

ImagineSoftware is seeking a motivated MLOps Engineer to bring machine learning models into scalable production environments for healthcare solutions. You will lead end-to-end ML pipelines and partner with data science to productionize models.

The role emphasizes cloud-native infrastructure on AWS, CI/CD for ML, monitoring, governance, and a fast-paced environment with opportunities for growth.

Qualifications

  • BS in computer science, engineering, data science, or related technical field.
  • 5+ years of experience in machine learning engineering.
  • 3+ years of hands-on experience in MLOps or production ML systems.

Responsibilities

  • Define and lead the MLOps vision, architecture, and roadmap across model development and production environments.
  • Design end-to-end ML pipelines from data ingestion to deployment and monitoring.
  • Partner with Data Science teams to productionize models reliably.
  • Build and maintain tooling for experimentation, model tracking, and reproducibility.

Skills

Python programming
Java
Airflow
Kubeflow
Step Functions
CI/CD
DevOps
MLflow
Feast
Kafka
Spark
AWS
SageMaker
real-time ml systems
batch ml systems

Education

BS in computer science, engineering, data science, or related technical field

Tools

Airflow
Kubeflow
Step Functions
MLflow
Feast
Kafka
Spark
SageMaker

Job description

The Imagine team is a growing company, and we are inviting a motivated Machine Learning Operations Engineer to join our talented team! This candidate will play a critical role in bringing machine learning models into reliable, scalable production environments that support innovative healthcare solutions. The ideal candidate will combine strong technical expertise with a solutions-oriented mindset.

If you are looking for a place that offers a challenging and fast-paced environment with the opportunity to grow and develop, look no further! We are always looking for quality people to join our growing team. Must-haves include the ability to adapt to an ever-changing environment, work quickly and efficiently, continuously challenge the status quo, and be an innovative and solutions-based thinker.

MLOps Strategy & Architecture

  • Work with senior leadership to define and lead the MLOps vision, architecture, and roadmap across model development and production environments
  • Design end-to-end ML pipelines, from data ingestion and feature engineering to training, validation, deployment, and monitoring
  • Partner with Data Science teams to productionize models efficiently and reliably
  • Build and maintain tooling for experimentation, model tracking, and reproducibility (e.g., feature stores, experiment tracking systems)
  • Optimize training workflows for performance, cost, and scalability

Production Infrastructure & Deployment

  • Architect and manage cloud-native ML infrastructure in AWS (e.g., SageMaker, EKS, Lambda, S3, Step Functions)
  • Implement CI/CD pipelines for ML workflows, including automated testing, validation, and deployment
  • Enable real-time and batch inference systems with high availability and low latency

Monitoring, Reliability & Governance

  • Establish monitoring for model performance, data drift, and system health
  • Implement alerting, logging, and observability frameworks
  • Ensure compliance with security, privacy, and governance standards

Other duties as assigned

Education and/or Experience Needed

  • BS in computer science, engineering, data science, or related technical field
  • 5+ years of experience in machine learning engineering

Qualifications You Must Have

  • 3+ years of hands-on experience in MLOps or production ML systems
  • Strong programming skills in Python (and ideally one additional language such as Java)
  • Experience building and maintaining ML pipelines and orchestration tools (e.g., Airflow, Kubeflow, Step Functions)
  • Strong understanding of CI/CD practices and DevOps principles
  • Experience with feature stores, model registries, and experiment tracking tools (e.g., MLflow, Feast)
  • Familiarity with streaming/data processing frameworks (e.g., Kafka, Spark)
  • Experience supporting both real-time and batch ML systems
  • Knowledge of model governance, fairness, and explainability frameworks

Employment Type

Full Time, Exempt

Reporting Structure

Sr. Vice President, Data Science

Location & Work Authorization

  • Charlotte, NC is the preferred location for this position.
  • This position is not eligible for H-1B visa sponsorship or C2C (Corp-to-Corp) arrangements. Candidates must be authorized to work in the United States without employer sponsorship, now or in the future.

At ImagineSoftware, we have a role to play in contributing to an inclusive world. We work every day to lead with our values and beliefs that enable you to develop your potential and bring your full self to the workplace. Our culture of diversity and inclusion enables more creative thinking and better ideas for addressing a more diverse market. We hire driven people from all backgrounds because it makes us a great company, and because it’s the right thing to do. If you share these values, you will find a home at ImagineSoftware.

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