AI/ML Engineer Manager (WDP)

Bespoke Technologies, Inc

$140K — $165K *
Aerospace & Defense
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years in data science or machine learning engineering, including 3 years in leadership.
  • Expertise in developing ML models with frameworks like TensorFlow and PyTorch.
  • Experience in maintaining production ML systems on cloud platforms (AWS, Azure, GCP).
  • Strong grasp of MLOps principles and related tools like MLflow and Kubeflow.
  • Proficiency with Docker and Kubernetes, plus CI/CD tools.
  • Solid programming skills in Python and knowledge of software engineering best practices.
  • Must have an active Top Secret/SCI security clearance.

Responsibilities

  • Lead and mentor a team of ML modeling developers and MLOps engineers.
  • Define and execute the technical strategy for the MaaS platform.
  • Oversee development and deployment of diverse machine learning models.
  • Establish robust MLOps practices for CI/CD pipelines.
  • Architect the service layer for secure and scalable model APIs.
  • Collaborate with stakeholders to turn requirements into production models.
  • Implement governance and ethical AI standards throughout the model lifecycle.
  • Manage project timelines and stakeholder communication for MaaS initiatives.

Benefits

  • Opportunity to lead and shape a specialized AI/ML MaaS team.
  • Engagement with cutting-edge technology in machine learning.
  • Strategic hands-on leadership role with vision setting for AI capabilities.
  • Collaboration with data scientists and engineers on complex challenges.
  • Involvement in high-security environment projects, enhancing professional growth.
Full Job Description
BT-160 - AI/ML Engineer Manager (WDP)
Location: Chantilly/Herndon

**MUST HAVE A TS/SCI CLEARANCE TO APPLY. Those without an active security clearance will not be considered.**

Role Description:
As the Manager for the AI/ML Models as a Service (MaaS) team, you will lead a specialized group of developers and engineers dedicated to productionizing machine learning. Your mission is to build and manage a centralized platform that provides access to pre-trained and custom-built AI/ML models, simplifying their integration and accelerating the delivery of AI-powered capabilities across the enterprise . This is a strategic, hands-on leadership role where you will define the vision for our MaaS offerings and oversee the entire lifecycle of model development, deployment, and operations.

Responsibilities:
  • Lead, mentor, and manage a high-performing team of ML modeling developers and MLOps engineers.
  • Define and execute the technical strategy for the MaaS platform, including the frameworks for model training, versioning, deployment, and monitoring.
  • Oversee the design, development, and deployment of a diverse portfolio of machine learning models to solve complex challenges.
  • Establish and enforce robust MLOps practices to ensure automated, reliable, and scalable CI/CD pipelines for machine learning models.
  • Architect the service layer for the MaaS platform, ensuring models are exposed via secure, scalable, and well-documented APIs.
  • Collaborate with data scientists, data engineers, and stakeholders to identify use cases and translate requirements into production-ready models.
  • Implement governance, security, and ethical AI standards across the entire model lifecycle.
  • Manage project timelines, resource allocation, and stakeholder communication for all MaaS initiatives.

Required Qualifications:
  • 8+ years of experience in data science or machine learning engineering, with at least 3 years in a technical leadership or management role.
  • Deep expertise in developing and deploying ML models using common frameworks (e.g., TensorFlow, PyTorch, scikit-learn).
  • Proven experience building and maintaining production ML systems in a cloud environment (AWS, Azure, GCP).
  • Strong understanding of MLOps principles and hands-on experience with relevant tools (e.g., MLflow, Kubeflow, AWS SageMaker, Azure ML).
  • Proficiency with containerization technologies (Docker, Kubernetes) and CI/CD tools.
  • Excellent programming skills in Python and familiarity with software engineering best practices.
  • Active Top Secret/SCI security clearance.

Preferred Qualifications:
  • Direct experience building a Model-as-a-Service or Machine-Learning-as-a-Service platform.
  • Experience with ML platforms like Databricks or AWS SageMaker AI.
  • Familiarity with Infrastructure-as-Code (IaC) tools like Terraform.
  • Experience working in a high-security environment.
  • Demonstrated success leading teams that deliver complex, data-driven software projects.

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