Full-Time

Senior AI/ML Engineer

Global InfoTek

Global InfoTek

51-200 employees

Designs and deploys federal cyber solutions

No salary listed

No H1B Sponsorship

Reston, VA, USA

Remote

US Citizenship Required

Category
AI & Machine Learning (1)
Required Skills
Scikit-learn
Python
Jupyter
Tensorflow
Neural Networks
Pytorch
Pandas
NumPy
Linux/Unix
Requirements
  • 5+ years of hands-on applied experience in machine learning, data science, or RF signal processing
  • Demonstrated proficiency in Python for ML and data science work — PyTorch or TensorFlow for model development, Pandas/NumPy for data manipulation, and scikit-learn or similar for evaluation and baseline modeling
  • Hands-on experience designing, training, and evaluating deep learning models — particularly metric learning, Siamese networks, or other similarity-learning architectures — on real-world, noisy, imbalanced datasets
  • Practical experience handling real-world data quality problems — missing values, label noise, class imbalance, systematic bias, and sensor artifacts — and the ability to diagnose and address them without discarding valid data
  • Ability to develop and run ML pipelines on Linux-based systems without cloud infrastructure or GPU acceleration — optimizing for CPU-only inference and multi-threaded data processing on resource-constrained x86 hardware
  • Bachelor’s or Master’s (or equivalent) with 5–7 years of hands-on applied experience
  • Education Level: BS or MS in Electrical Engineering, Computer Science, Applied Mathematics, or a closely related quantitative field. Experience may be considered in place of education requirement.
  • U.S. Citizenship is required; Clearance Level: Public Trust; Location: Remote; Years of Experience: 5–7 years; Job Classification: Full Time
Responsibilities
  • Design, build, and validate machine learning models for RF emitter identification — including feature engineering from sensor data, training pipeline development, model evaluation, and iterative refinement based on results
  • Conduct hands-on exploratory data analysis on RF sensor datasets using Python and Jupyter notebooks — writing and running analytical code, characterizing feature distributions, identifying data quality issues, and producing documented findings
  • Implement and maintain ML data pipelines — ingesting NDF sensor streams, applying rollup and preprocessing logic, constructing training datasets, and ensuring pipeline correctness on constrained edge hardware with no cloud dependency
  • Collaborate with the technical lead and Principal AI/ML Engineer to investigate RF sensor data quality, attribution reliability, and feature behavior under contention — writing code to characterize error sources, validate assumptions, and reproduce findings
  • Produce clear technical documentation of experiments, model configurations, and results — maintaining reproducibility through disciplined versioning, and contributing to monthly status reports and team knowledge sharing
Desired Qualifications
  • Familiarity with RF signal characteristics, passive receiver phenomenology, and sensor data interpretation — including awareness of processing artifacts, attribution ambiguities, and measurement limits common in signals intelligence datasets
  • Hands-on experience applying machine learning — particularly metric learning, deep learning networks, or similarity-learning architectures — to RF or time-series signal data, including feature engineering, training pipeline development, and model validation
  • Exposure to TDMA network protocols or military datalink systems, and interest in learning the signal processing challenges of dense, contested electromagnetic environments
  • Familiarity with direction-finding, time-difference-of-arrival (TDOA), or related passive geolocation concepts — understanding of their mathematical foundations and common failure modes is more important than operational experience
  • Experience with binary serialization formats (FlatBuffers, Protocol Buffers) and high-throughput sensor data pipelines operating in near-real-time on resource-constrained hardware
  • Background in statistical signal processing — error ellipses, bearing estimation uncertainty, feature reliability under noise — with the ability to distinguish statistically significant findings from artifacts of small sample size or improper normalization
  • Certifications in machine learning, data science, or related technical fields (e.g., TensorFlow Developer Certificate; PyTorch Certified Associate; AWS Certified Machine Learning — Specialty; Microsoft Certified: Azure AI Engineer Associate; Certified Analytics Professional (CAP); etc.)

Global InfoTek, Inc. delivers cyber and advanced technology solutions for U.S. government customers, including DoD, DHS, and the Intelligence Community. It designs, develops, and deploys software, platforms, and services across enterprise cyber development, DevSecOps, zero trust, offensive and defensive cyber operations, data analytics, AI/ML, and research and development, often via rapid development teams called the Innovation Hive. GITI differentiates itself by working with national security clients under Top-Secret clearances and by offering end-to-end capabilities through government-focused contracts and a cleared workforce, paired with accelerated delivery from its Innovation Hive. Its goal is to help protect the nation by delivering secure, fast, and cost-effective cyber and advanced technology solutions to DoD, DHS, and the Intelligence Community.

Company Size

51-200

Company Stage

N/A

Total Funding

N/A

Headquarters

Reston, Virginia

Founded

1996

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What believers are saying

  • Secured GSA IDV contract 47QRCA25DS844 on Dec 19, 2024.[3]
  • Awarded $51.7M AFRL contract FA875020F1005.[4]
  • $26.9M revenue with 103 employees shows scalability.[3]

What critics are saying

  • Booz Allen Hamilton wins DARPA contracts due to scale.[5]
  • No CMMC 2.0 Level 3 certification disqualifies cyber primes.[2]
  • Palantir poaches AI engineers from 103-employee firm.[3]

What makes Global InfoTek unique

  • Global InfoTek specializes in cyber, AI, ML, and DevSecOps for Warfighters.[2]
  • Woman-owned small business qualifies for SBA set-aside contracts.[1]
  • Active on SOSSEC and GovTribe for teaming agreements.[6]

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Benefits

Remote Work Options

Growth & Insights

Headcount

6 month growth

-10%

1 year growth

-10%

2 year growth

-11%