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Job Title: AI/ML Engineer
Company Name: General Dynamics IT
Location: Washington, DC
Position Type: Full Time
Post Date: 03/12/2026
Expire Date: 04/12/2026
Job Categories: Engineering, Information Technology
Job Description
AI/ML Engineer

The AI/ML Engineer is responsible for designing, developing, and implementing machine learning models and artificial intelligence solutions to solve complex problems, optimize processes, and enhance decision-making. They work closely with data scientists and software engineers to build scalable, efficient systems while leveraging advanced algorithms and large datasets.

  • Design, develop, implement and use machine learning algorithms and models to address business challenges and opportunities, such as predictive analytics, natural language processing, computer vision and recommendation systems.

  • Collect, clean, and preprocess large volumes of structured and unstructured data from various sources, ensuring data quality, integrity and relevance for model training and evaluation.

  • Train, validate, and optimize machine learning models using state-of-the-art techniques and frameworks. Evaluate model performance, interpret results, and iterate on model design as needed.

  • Extract, select, and engineer relevant features from raw data to improve model performance and generalization capabilities. Utilizes domain knowledge and data exploration techniques to identify informative features.

  • Deploy machine learning models into production environments, integrating them with existing systems and applications. Implements scalable, efficient, and reliable solutions for real-time batch inference.

  • Monitor model performance, reliability, and scalability in production environments, implementing automated monitoring and alerting systems to detect anomalies and performance degradation.

  • Document technical designs, implementation details, and best practices for AI solutions.

  • Collaborate with cross-functional teams to include data scientists, software engineers, product managers, and other stakeholders to understand requirements, prioritize projects and delivery impactful AI Solutions.

  • Perform additional duties as assigned.

  • May coach and provide guidance to less experienced professionals.

  • May serve as a team or task lead.

  • Works independently under general supervision

To qualify, you must meet these basic qualifications:

Required Skills

  • Bachelors degree in relevant field and 5+ years of experience

  • Analytical & Programming

  • Strong Python (data manipulation, model development; libraries like Pandas, NumPy, scikit-learn).

  • SQL proficiency (joins, window functions, performance-aware queries).

  • Statistical foundations (probability, hypothesis testing, regression, experimental design/A-B testing).

  • Data Modeling

  • End-to-end ML workflow experience (feature engineering, training, validation, deployment, monitoring).

  • Data wrangling & ETL/ELT (building reliable pipelines; handling messy, large datasets).

  • Model evaluation (metrics selection, bias/variance trade-offs, error analysis).

  • AI Integration w/ MLOps

  • Hands-on API integration for AI services (e.g., calling model endpoints, building microservices).

  • Production deployment of models (packaging, versioning, CI/CD for ML).

  • Model monitoring (drift detection, performance tracking, retraining triggers).

  • Cloud Platforms

  • Experience with at least one major cloud (Azure, AWS, or GCP) for data/AI workloads.

  • Familiarity with containers (Docker) and source control (Git).

  • Data visualization skills (Power BI or Tableau) to communicate insights and outcomes.

  • Communication

  • System analysis skills to identify viable AI insertion points in processes, products, or workflows.

  • Stakeholder communication (translating technical findings into business value and concrete recommendations).

  • Documentation of models, assumptions, data lineage, and decisions.

  • Governance/Security

  • Responsible AI awareness (fairness, explainability, privacy, and compliance considerations).

  • Basic understanding of data security and access controls in production environments.

Preferred Skills

  • Advanced AI/LLM

  • Experience with LLMs (e.g., Azure OpenAI Service/OpenAI API) for summarization, classification, or copilots.

  • Prompt engineering and evaluation of LLM outputs for quality and safety.

  • RAG pipelines (retrieval-augmented generation), vector databases (e.g., Azure AI Search, Pinecone, FAISS), and embeddings.

  • Fine-tuning or model adaptation strategies for domain-specific use cases.

  • MLOps Engineering

  • Model orchestration/experiment tracking (MLflow, Weights & Biases).

  • Kubernetes and ML deployment tools (e.g., AKS/EKS, Argo, KServe).

  • Feature stores, A/B testing frameworks, and event-driven/streaming data (Kafka, Kinesis).

  • CI/CD pipelines (GitHub Actions, Azure DevOps) and Infrastructure as Code (Terraform, Bicep).

  • Data Platform Integration

  • Databricks, Snowflake, or BigQuery experience.

  • Building robust APIs (REST/GraphQL) and microservices around models.

  • Monitoring & Observability (Prometheus, Grafana; app & model logs).

  • Responsible AI & Compliance

  • Practical experience with model risk management, documentation standards, and explainability (SHAP, LIME).

  • Knowledge of privacy-by-design and PII handling (data minimization, anonymization).

  • (If applicable to the environment) familiarity with FedRAMP or regulated environments.

  • Additional Languages/Tools

  • R, PySpark, or Scala for data-intensive workloads.

  • LangChain or Semantic Kernel for LLM app development.

  • Tableau/Power BI advanced (parameterized dashboards, Row-Level Security).

  • Ability to support 24x7 environment for business critical and contractual SLA impacting issues

Clearance: Candidates must be eligible to obtain a federal security clearance


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At GDIT, the mission is our purpose, and our people are at the center of everything we do.
Growth: AI-powered career tool that identifies career steps and learning opportunities
Support: An internal mobility team focused on helping you achieve your career goals
Rewards: Comprehensive benefits and wellness packages, 401K with company match, and competitive pay and paid time off
Flexibility: Full-flex work week to own your priorities at work and at home
Community: Award-winning culture of innovation and a military-friendly workplace

OWN YOUR OPPORTUNITY
Explore a career in data science and engineering at GDIT and youll find endless opportunities to grow alongside colleagues who share your determination for solving complex data challenges.

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Contact Information
Company Name: General Dynamics IT
Website:https://www.gdit.com/careers/job/2adb33f01/aiml-engineer/?source=AutoAppend_HBCU
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