Senior AI Engineer

Thales Defense & Security, Inc.

$111K — $142K *
Aerospace & Defense
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • U.S. Citizenship required due to government security clearance needs.
  • Bachelor's degree in a relevant technical field; advanced degree preferred.
  • Minimum 8 years of experience in software/DevOps, with at least 4 years focused on AI/ML engineering.
  • Proficient in Python and major ML frameworks like PyTorch and TensorFlow.
  • Hands-on experience with MLOps tools such as MLflow and Kubeflow.
  • Expertise in deploying AI models using Docker and Kubernetes in secure environments.
  • Strong analytical, troubleshooting, and organizational skills.

Responsibilities

  • Lead architecture and deployment of AI/ML models including NLP and generative AI.
  • Design and manage MLOps pipelines for model training and monitoring.
  • Define MLOps standards and enforce responsible AI practices.
  • Integrate AI solutions into various environments with an emphasis on security.
  • Implement AI controls for privacy, explainability, and bias testing.
  • Optimize model performance for diverse deployment environments.
  • Collaborate with cross-functional teams to resolve AI system issues.

Benefits

  • Opportunity to work in a cutting-edge AI environment.
  • Collaborative and supportive work culture with mentoring opportunities.
  • Focus on secure and responsible AI practices aligned with government standards.
  • Hybrid work model allowing flexibility between on-site and remote work.
  • Involvement in high-impact projects within a regulated environment.
Full Job Description
We are seeking a Senior AI Engineer located in our Clarksburg, MD Campus. The Senior AI Engineer will report to the IT DevOps Manager.

Responsibilities

  • Lead the architecture, development, training, and deployment of AI/ML models, including traditional ML, deep learning, computer vision, NLP, and generative AI.
  • Design and manage end-to-end MLOps pipelines for data prep, training, model versioning, deployment, monitoring, and continuous retraining.
  • Define and enforce MLOps standards, governance, and responsible AI best practices across the enterprise.
  • Integrate AI solutions into on-prem, cloud (Azure/AWS), and hybrid environments with strong focus on security and scalability.
  • Implement secure and responsible AI controls such as model hardening, privacy protections, explainability, and bias/fairness testing aligned with DoD/NIST frameworks.
  • Optimize model and inference performance for GPUs, on-prem clusters, and edge environments.
  • Collaborate with security, cloud, DevOps, and application teams to productionize AI systems and resolve complex technical issues.
  • Ensure compliant handling of sensitive/classified data according to CMMC, NIST, DoD, and FedRAMP requirements.
  • Build Python tooling, reusable components, and CI/CD integrations to support automation and platform maturity.
  • Lead proofs-of-concept, maintain documentation, guide monitoring and incident response, and mentor engineering teams.


Qualifications

The requirements listed below are representative of the knowledge, skill, and/or ability required. Reasonable accommodations may be made to enable individuals with disabilities to perform the essential functions.

  • U.S. Citizenship required. - Applicants selected may be subject to a government security investigation and must meet eligibility requirements for access to classified information.
  • Education: Bachelor's degree in Computer Science, Data Science, AI, Engineering, Mathematics, or related field (or equivalent professional experience). Advanced degree a plus.
  • Experience: Minimum 8 years of progressive experience in software engineering, DevOps, platform engineering, data engineering, or infrastructure, including at least 4 years hands-on AI/ML engineering and MLOps (designing, deploying, monitoring, and operating production AI/ML systems). Strong transferable experience from software, DevOps, SRE, or data platform roles is highly valued given the relative newness of pure AI careers.
  • Strong Python skills and experience with major ML frameworks (PyTorch/TensorFlow, scikit-learn, Hugging Face).
  • Hands-on experience building and maintaining MLOps pipelines (MLflow, DVC, Kubeflow, Airflow, Azure ML, SageMaker).
  • Proficiency deploying AI models using Docker, Kubernetes, and Helm, including GPU workloads.
  • Knowledge of AI security, adversarial ML, explainability, and responsible AI principles.
  • Experience working with secure data handling and controlled environments.
  • Proficiency with Git, CI/CD, IaC, and collaborative development practices.
  • Experience with ticketing/ITSM tools (e.g., Jira Service Management).
  • Strong analytical, troubleshooting, and organizational skills.
  • Ability to lead, mentor, and work independently across cross-functional teams.
  • Strong written and verbal communication skills for technical and non-technical audiences.


Preferred but not required

  • Advanced degree in CS, AI, ML, or related fields.
  • Experience with generative AI, LLMs, RAG, vector databases, and LLMOps.
  • Experience with on-prem GPU clusters, HPC environments, or schedulers (Slurm, Run:ai).
  • Model optimization and edge deployment experience (quantization, pruning, TensorRT, ONNX).
  • Experience in defense or other highly regulated environments with DoD/NIST/CMMC frameworks.


The annualized pay range for this role is $111,476.70 to $142,442.45 USD along with a target incentive compensation plan (ICP) of 5% The pay range provided is a good faith estimate representative of the experience level for the role described above. TDSI considers several factors when extending an offer, including but not limited to, the role, function and associated responsibilities, a candidate's work experience, location, education/training, and key skills.

For specific questions about this job posting, candidates may contact talent acquisition at [redacted].

#LI-EC1 #LI-Hybrid

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