AI/ML Engineer

Frontier Technology Inc.

$120K — $150K *
US-AnywhereRemote in Colorado Springs, CO
Aerospace & Defense
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Must be a U.S. citizen and able to obtain a security clearance.
  • 6-10+ years of experience in AI/ML solution development and deployment.
  • 3 years of experience with DoD/DoW AI environments.
  • Strong Python development skills in AI contexts.
  • Direct experience with ML frameworks like PyTorch and TensorFlow.
  • Ability to build and deploy MLOps pipelines like MLflow or Kubeflow.
  • Knowledge of vector databases and retrieval architectures.

Responsibilities

  • Design and deploy AI/ML models and pipelines for mission objectives.
  • Build and fine-tune models using popular AI frameworks.
  • Develop MLOps pipelines for streamlined model management.
  • Optimize vector databases and retrieval architectures.
  • Write efficient Python code for data ingestion and feature engineering.
  • Experiment with LLM fine-tuning techniques.
  • Integrate AI services into real-world applications via APIs and workflows.

Benefits

  • Flexible working arrangements, including remote options.
  • Opportunity to directly impact defense and national security missions.
  • Collaborative environment with data engineers and software developers.
  • Commitment to professional development and training.
Full Job Description
Overview

FTI Defense is seeking a hands-on AI/ML Engineer to design, build, and deploy advanced machine learning solutions supporting defense and national security missions. This role focuses on execution in oversight, ideal for an engineer who thrives in the code, enjoys building end-to-end pipelines, and takes pride in seeing their work directly impact operational systems.

 

Responsibilities
  • Design, develop, and deploy AI/ML models and pipelines that meet mission and performance objectives.
  • Build, train, and fine-tune models using frameworks such as PyTorch, TensorFlow, scikit-learn, Hugging Face, and LangChain.
  • Develop and operationalize MLOps pipelines (MLflow, Kubeflow, DVC, or custom training/inference orchestration).
  • Implement and optimize vector databases (Milvus, Pinecone, Chroma, FAISS) and retrieval architectures (RAG, graph, hybrid).
  • Write clean, efficient Python code for data ingestion, feature engineering, embeddings, and inference services.
  • Experiment with fine-tuning and optimization of LLMs and task-specific models (LoRA, QLoRA, PEFT).
  • Contribute to agent-based applications using frameworks like LangGraph, AutoGen, CrewAI, or DSPy.
  • Integrate AI services into real-world systems via APIs, event-driven workflows, or UI copilots.
  • Collaborate with data engineers, software developers, and mission analysts to ensure AI models are production-ready and aligned with customer needs.
  • Participate in peer reviews, contribute to shared repositories, and document models and experiments for reproducibility.
Education/Qualifications

Minimum Requirements:

  • Must be a U.S. citizen and be willing to obtain and maintain a security clearance, as needed.
  • 6-10+ years of professional experience developing and deploying AI/ML solutions in production environments.
  • Minimum of 3 years' professional experience within the Department of Defense/Department of War (DoD/DoW) AI assurance, security, and deployment environments.
  • Strong Python development skills with hands-on experience building AI/ML solutions.
  • Direct experience with ML frameworks such as PyTorch, TensorFlow, scikit-learn, Hugging Face, or LangChain.
  • Proven ability to build and deploy MLOps pipelines using MLflow, Kubeflow, DVC, or equivalent.
  • Working knowledge of vector databases (Milvus, Pinecone, Chroma, FAISS) and retrieval-based architectures (RAG, hybrid, graph).
  • Professional experience fine-tuning and evaluating LLMs or smaller task-specific models using LoRA, QLoRA, or PEFT.
  • Professional experience integrating AI capabilities into production systems or mission applications.

 Preferred Qualifications:

  • Familiarity with agentic frameworks (LangGraph, AutoGen, CrewAI, DSPy) and multi-agent reasoning.
  • Understanding of prompt engineering, retrieval quality, and grounding methods.
  • Exposure to GPU-based or edge inference environments.
  • Bachelor’s or Master’s degree in Computer Science, Engineering, Data Science, or a related technical field.
  • Active Secret clearance preferred; ability to obtain one is required.

 

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