Data Scientist / AI/ML Engineer (Imagery) VAWFH 1652

Posted 2 Days Ago
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Reston, VA, USA
In-Office
100K-250K Annually
Senior level
Software • Cybersecurity
The Role
Design, develop, and operationalize ML and computer vision models for imagery analysis, focusing on detection of AI-generated or manipulated images. Preprocess and validate large datasets, evaluate and optimize model performance, containerize deployments, translate research into production workflows, and collaborate in secure, classified environments.
Summary Generated by Built In


Clearance Level:
TS/SCI

US Citizenship: Required

Job Classification: Regular, Full-Time

Location: Reston, VA
Years of Experience: 5-7 Years

Education Level: Bachelor degree or Master’s degree is required in Operations Research, Industrial Engineering, Applied Mathematics, Statistics, Physics, Computer Science, or related fields.

Briefly Describe the Work:

GITI is looking for a Machine Learning (ML) Engineer with documented expertise to be responsible for researching, developing, architecting, and integrating ML models, algorithms, tools, and techniques into existing or new environments. A candidate who has experience analyzing large datasets with preprocessing data skills, data cleansing, and conducting data integrity and validation actions. A candidate who will design, develop, and integrate ML models and algorithms to address specific problems with detection of AI-generated and manipulated imagery, or introduction of pattern recognition for imagery. Successful candidates for this role must have critical thinking skills, be creative, curious, resourceful, and have a passion for conveying a wide range of information through research leading to deeper insights. The candidate may work independently but participate in project-wide reviews of requirements, system architecture, and detailed design documents. An ML Engineer must be able to collaborate well with a strong lean-forward attitude to shift knowledge left, deliver well, and produce quality results. The selected candidate will play a critical role in bridging research and operations, integrating advanced algorithms into operational workflows.

  • Integrate and operationalize machine learning and computer vision models developed by research partners
  • Apply algorithms to datasets and generate results aligned with project requirements
  • Evaluate model performance using metrics such as accuracy, precision, recall, ROC/AUC, and localization quality
  • Adapt and optimize models for real-world conditions (compression, noise, format variability)
  • Work with containerized solutions (Docker or similar) to support deployment and reproducibility
  • Translate research concepts, theory, and technical reports into practical implementations and workflows
  • Generate technical reports, visualizations, and summaries suitable for stakeholders
  • Collaborate with internal teams and external partners to support integration and testing
  • Participate in technical meetings and reviews within secure environments. Candidates must have a complete understanding and wide application of technical principles, theories and concepts. Working under only general direction, provides technical solutions to a wide range of difficult problems. Independently determines and develops approach to solutions.

Required Skills:

  • 3+ years of experience in machine learning / computer vision / data science
  • Strong proficiency in Python and ML frameworks (e.g., PyTorch, TensorFlow)
  • Experience working with image and/or video data
  • Ability to understand and implement research-level algorithms from technical papers and reports
  • Experience with model evaluation, validation, and performance analysis
  • Familiarity with Linux-based environments and version control systems (e.g., Git)

Desired Skills:

  • Experience with image forensics, alteration detection, or related analytics
  • Experience working in classified environments
  • Familiarity with containerization (Docker) and deployment pipelines
  • Experience handling large-scale or multi-format datasets (JPG, WEBP, MP4, AVI)
  • Knowledge of synthetic data generation or explainable AI
  • Ability to bridge theory and implementation
  • Strong problem-solving and analytical skills
  • Effective communication with both technical and non-technical stakeholders
  • Comfortable working in structured, mission-driven environments

Relevant Certifications:

  • Certifications in machine learning, data science, or related fields (e.g., TensorFlow Developer Certificate, AWS Certified Machine Learning Specialty, IBM Machine Learning Professional Certificate, Google Professional Machine Learning Engineer Certification, IABAC: Certified Machine Learning Expert Certification, etc.

Global InfoTek, Inc. is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, protected veteran status, or based on disability.

About Global InfoTek, Inc. Global InfoTek Inc. has an award-winning track record of designing, developing, and deploying best-of-breed technologies that address the nation's pressing cyber and advanced technology needs. GITI has rapidly merged pioneering technologies, operational effectiveness, and best business practices for over two decades.

Skills Required

  • TS/SCI clearance
  • US citizenship
  • Bachelor's or Master's degree in Operations Research, Industrial Engineering, Applied Mathematics, Statistics, Physics, Computer Science, or related field
  • 5-7 years of professional experience
  • 3+ years experience in machine learning, computer vision, or data science
  • Strong proficiency in Python
  • Experience with PyTorch
  • Experience with TensorFlow
  • Experience working with image and/or video data
  • Ability to understand and implement research-level algorithms
  • Experience with model evaluation, validation, and performance analysis
  • Familiarity with Linux-based environments
  • Familiarity with version control systems (Git)
  • Experience with image forensics or alteration detection
  • Experience working in classified environments
  • Familiarity with containerization and deployment pipelines (Docker)
  • Experience handling large-scale or multi-format datasets (JPG, WEBP, MP4, AVI)
  • Knowledge of synthetic data generation or explainable AI
  • Relevant machine learning or data science certifications
  • Strong problem-solving and communication skills
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