MLOps Engineer

Booz Allen Hamilton•Chantilly, VA
•$77,600 - $176,000•Remote

About The Position

Are you looking for an opportunity to make a difference and help build a system that will have a positive impact on the intelligence community (IC)? What if you could find a position that is tailor-made for your mix of development, engineering, and analytics? Efficient development teams make the most of their time by limiting the activities that take developers and data scientists away from writing their code. That’s why we need an experienced machine learning (ML) engineer like you to help us design and architect an MLOps platform in the cloud that shortens the time it takes to get new capabilities from development to production, to support mission-critical operations. As an MLOps Engineer on our team, you’ll use your development experience to streamline our development life cycle from development to production. You’ll be working with a collaborative Agile development team to build and maintain cloud software and infrastructure that supports ML across the enterprise. You’ll implement continuous integration and continuous deployment (CI/CD) into development, testing, and production environments. This is an opportunity to broaden your skillset into areas like Agile development, cloud-based development, containerization, and serverless while developing software that will improve national security. As an ML engineer, you’ll identify new opportunities to build solutions and architecture to help your customers meet their toughest challenges. Join our team as we build tools to transform the future of the IC. Join us. The world can’t wait.

Requirements

  • 2+ years of experience with Object-Oriented Programming (OOP), including in Python
  • 2+ years of experience developing containerized applications, including API design and authentication
  • 2+ years of experience developing software using cloud technologies, including AWS
  • 2+ years of experience leveraging MLOps platforms and ML CI/CD workflows to manage datasets and model training, deployment, and monitoring
  • 2+ years of experience developing prompts, tools, and agents with LLMs
  • Knowledge of the ML lifecycle and concepts to develop an MLOps ecosystem
  • TS/SCI clearance with a polygraph
  • Bachelor’s degree and 2+ years of experience in AI/ML engineering, or 4+ years of experience in AI/ML engineering in lieu of a degree
  • Ability to obtain a Security+ CE, SSCP, CCNA-Security, or GSEC Certification within 6 months of hire date

Nice To Haves

  • Experience with AWS SageMaker, Lambda, API Gateway, DynamoDB, S3, Bedrock, and IAM
  • Experience with Kubernetes
  • Experience with IaC tools such as Helm and Terraform
  • Experience with design and implementation, including building, containerizing, and deploying end-to-end automated data and ML pipelines, within a cloud environment
  • Experience with version control tools, including Git
  • Master’s degree
  • Security+ CE, SSCP, CCNA-Security, or GSEC Certification

Responsibilities

  • Design and architect an MLOps platform in the cloud.
  • Streamline the development life cycle from development to production.
  • Build and maintain cloud software and infrastructure that supports ML across the enterprise.
  • Implement continuous integration and continuous deployment (CI/CD) into development, testing, and production environments.
  • Identify new opportunities to build solutions and architecture to help customers meet their toughest challenges.

Benefits

  • Health, life, disability, financial, and retirement benefits
  • Paid leave
  • Professional development
  • Tuition assistance
  • Work-life programs
  • Dependent care
  • Recognition awards program
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