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Shield AI

Object Detection and Tracking Engineer (R5263)

London
Posted 19 days ago
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Founded in 2015, Shield AI is a venture-backed defense-tech company with the mission of protecting service members and civilians with intelligent systems. Its products include Hivemind autonomy software and V-BAT and X-BAT aircraft. With offices and facilities across the U.S., Europe, the Middle East, and Asia-Pacific, Shield AI’s technology actively supports operations worldwide. For more information, visit www.shield.ai. Follow Shield AI on LinkedIn, X, Instagram, and YouTube.

About the Role

This position is ideal for an individual who thrives on building advanced perception systems that enable autonomous aircraft to operate effectively in complex and contested environments. A successful candidate will be skilled in developing real-time object detection, sensor fusion, and state estimation algorithms using data from diverse mission sensors such as EO/IR cameras, radars, and IMUs.

The role requires strong algorithmic thinking, deep familiarity with airborne sensing systems, and the ability to deliver performant software in simulation and real-world conditions. Our Perception Engineers are instrumental in creating the situational awareness that underpins autonomy, ensuring our systems understand and respond to the operational environment with speed, precision, and resilience.

Responsibilities

  • Develop advanced perception algorithms — Design and implement robust algorithms for object detection, classification, and multi-target tracking across diverse sensor modalities.
  • Implement sensor fusion frameworks — Integrate data from vision systems, radars, and other mission sensors using probabilistic and deterministic fusion techniques to generate accurate situational awareness.
  • Develop state estimation capabilities — Design and refine algorithms for localization and pose estimation using IMU, GPS, vision, and other onboard sensing inputs to enable stable and accurate navigation.
  • Analyze and utilize sensor ICDs — Interpret interface control documents (ICDs) and technical specifications for aircraft-mounted sensors to ensure correct data handling, interpretation, and synchronization.
  • Optimize perception performance — Tune and evaluate perception pipelines for performance, robustness, and real-time efficiency in both simulation and real-world environments.
  • Support autonomy integration — Work closely with autonomy, systems, and integration teams to interface perception outputs with planning, behaviors, and decision-making modules.
  • Validate in simulated and operational settings — Leverage synthetic data, simulation environments, and field testing to validate algorithm accuracy and mission readiness.
  • Collaborate with hardware and sensor teams — Ensure seamless integration of perception algorithms with onboard compute platforms and diverse sensor payloads.
  • Drive innovation in airborne sensing — Contribute novel ideas and state-of-the-art techniques to advance real-time perception capabilities for unmanned aircraft operating in complex, GPS-denied, or contested environments.

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Travel Requirement – Members of this team typically travel around 10-15% of the year (to different office locations, customer sites, and flight integration events).

Required Qualifications

  • Education: BS/MS in Computer Science, Electrical Engineering, Mechanical Engineering, Aerospace Engineering, and/or similar degree, or equivalent practical experience
  • Experience: Typically requires a minimum of 10 years of related experience with a Bachelor’s degree; or 9 years and a Master’s degree; or 7 years with a PhD; or equivalent work experience.
  • Skills:
    • Background in implementing algorithms such as Kalman Filters, multi-target tracking, or deep learning-based detection models.
    • Familiarity with fusing data from radar, EO/IR cameras, or other sensors using probabilistic or rule-based approaches.
    • Familiarity with SLAM, visual-inertial odometry, or sensor-fused localization approaches in real-time applications.
    • Ability to interpret and work with Interface Control Documents (ICDs) and hardware integration specs.
    • Proficiency with version control, debugging, and test-driven development in cross-functional teams.

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Preferred Qualifications

  • Hands-on integration or algorithm development with airborne sensing systems.
  • Experience with ML frameworks such as PyTorch or Tensorflow, particularly for vision-based object detection or classification tasks.
  • Experience deploying perception software on SWaP-constrained platforms.
  • Familiarity with validating perception systems during flight test events or operational environments.
  • Understanding of sensing challenges in denied or degraded conditions.
  • Exposure to perception applications across air, maritime, and ground platforms.

Why Join Shield AI

  • Help build the defining defense technology company of this century.
  • Work at the forefront of AI, autonomy, and next-generation defense systems.
  • Operate in a highly entrepreneurial and mission-driven environment.
  • Make a direct impact on international growth and strategic defense partnerships.
  • Collaborate with exceptional teams solving some of the world’s most complex operational challenges.

Our international teammates receive a comprehensive total rewards package aligned to your country office location. For full details on compensation and benefits, please consult your talent acquisition partner.

Note: We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.

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Skills

Object Detection
Sensor Fusion
State Estimation
Kalman Filters
Multi-Target Tracking
Deep Learning
SLAM
Visual-Inertial Odometry
Localization
Debugging
Test-Driven Development
Machine Learning
PyTorch
TensorFlow
Integration
Performance Optimization

Location

London, England, United Kingdom

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