
Distinguished AI/ML Engineer
Posted 6 hours ago

Posted 6 hours ago
This is a fully remote position, open to applicants in Colorado.
• Design and integrate hybrid AI systems that merge traditional machine learning, deep learning, large language models (LLMs), and retrieval-augmented generation (RAG) pipelines.
• Create and implement scalable AI architectures, including APIs, microservices, and model-serving frameworks that work seamlessly with analytic, simulation, or operational systems.
• Oversee the entire AI/ML lifecycle — from data ingestion and feature engineering to training, deployment, and maintenance within secure DoD environments (IL5/IL6, ATO, GovCloud).
• Develop event-driven data pipelines and feature stores for both structured and unstructured data, encompassing text, imagery, and simulation outputs.
• Promote Responsible AI practices by incorporating traceability, explainability, and confidence scoring into deployed systems.
• Establish and manage MLOps pipelines (MLflow, Kubeflow, Airflow, Docker/Kubernetes) to facilitate continuous integration, retraining, and drift detection.
• Transition R&D prototypes to production, optimizing for mission constraints such as limited computing resources, edge environments, or disconnected operations.
• Offer technical leadership and mentorship, setting benchmarks for model quality, architectural design, and ethical AI deployment across programs.
• Collaborate with engineering, data, and modeling teams to unify FTI’s AI portfolio, ensuring interoperability and reuse across mission systems.
• Assist in proposal and solution development by providing technical insights for AI/ML architectures, data strategies, and Responsible AI assurance frameworks.
• Active Secret clearance is required; TS/SCI is strongly preferred.
• Bachelor’s degree in Computer Science, Engineering, or a related technical field (Master’s or Ph.D. preferred).
• Over 10 years of experience in AI/ML development, with at least 5 years in designing and deploying scalable AI/ML architectures, including a minimum of two full lifecycle implementations (from prototype to operational system).
• Proficient in Python, PyTorch, TensorFlow, and contemporary ML frameworks.
• Experience in designing or deploying systems that utilize vector databases (Milvus, Pinecone, Weaviate), knowledge graphs, and semantic search frameworks.
• Proven expertise in designing event-driven data pipelines using Databricks, Spark, Flink, or Kafka.
• Demonstrated experience in deploying AI/ML systems in secure, classified, or edge environments.
• Familiarity with Responsible AI and assurance principles, including bias detection, explainability, human-machine collaboration, and hallucination prevention.
• Experience in integrating AI models into simulation, modeling, or operational planning systems is highly desirable.
• Background in transitioning R&D systems into accredited production environments.
• Excellent communication and mentoring abilities, with the capacity to lead technically while remaining actively engaged.
• Competitive salary and performance-based incentives.
• Comprehensive health, dental, and vision insurance plans.
• Opportunities for professional development and continuous learning.
• Supportive work environment that values innovation and collaboration.
• Flexible work arrangements to promote work-life balance.
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