Software Engineer I, Perception (New Grad)

True AnomalyTrue AnomalyLong Beach, California, United States | Denver, Colorado, United States
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Posted

8/25/2026

Employment

Temporary

Range

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Work style

On-site

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AI summary

Core responsibilities

You will develop hybrid perception systems for autonomous spacecraft by integrating classical computer vision with deep learning models. Responsibilities include implementing tracking algorithms, training neural networks, and deploying optimized code to edge hardware for orbital operations.

Requirements overview

Candidates must be pursuing or have completed a degree in computer science, engineering, or a related technical field with coursework in computer vision and estimation theory. Proficiency in Python and familiarity with C++ or machine learning frameworks are required, along with U.S. citizenship for government contract compliance.

Key skills

Computer VisionDeep LearningPythonC++PyTorchExtended Kalman FiltersMulti-object TrackingNeural NetworksCoordinate TransformationsImage ProcessingTensorRTONNX RuntimeLinear AlgebraProbabilitySensor FusionRobotics

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Education requirements

bachelor degreepostgraduate degree

About True Anomaly

Industry

Defense and Space Manufacturing

Employees

483

Type

Privately Held

Size

201-500 employees

True Anomaly is the only defense technology company focused exclusively on space defense. Founded in 2022 by ex-U.S. Space Force members, True Anomaly designs and builds advanced systems for space superiority: agile and powerful spacecraft platforms, mission software engineered for unmatched command and control, and payloads tailored for precision sensing and effects. We are headquartered in Centennial, Colorado, with regional offices in Colorado Springs, Colorado, Long Beach, California, and Washington, D.C. We are hiring and seeking exceptional talent to join True Anomaly, from any technical industry or background, to bring unique talents, perspective, and solutions. If you embrace complexity, demonstrate relentless ownership, have the resiliency and persistence to overcome challenges. If you’re like us and want your work to carry purpose and shape the future of space, visit www.WhyAreYouHere.com.

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Job categories

TechnologySoftwareEngineeringScience & ResearchSecurity & Safety

Description

Space is a warfighting domain. True Anomaly seeks those with the talent and ambition to build the technology that secures it. OUR MISSION True Anomaly delivers decisive capabilities for space superiority. We build autonomous spacecraft, advanced payloads, mission software, and space-based interceptors — enabling the U.S. and its Allies to secure the space environment and counter threats from the ultimate high ground. OUR VALUES Be the offset. We create asymmetric advantages with creativity and ingenuity. What would it take? We challenge assumptions to deliver ambitious results. It’s the people. Our team is our competitive advantage and we are better together. YOUR MISSION You'll work on hybrid perception systems combining classical computer vision with modern deep learning for autonomous spacecraft: building multi-object tracking pipelines that fuse neural network detections with Kalman filtering, developing coordinate transformation chains from pixels to orbital frames, training models on synthetic space imagery, and deploying algorithms onboard under strict compute/power constraints. Your work enables spacecraft to detect objects against star fields, track multiple targets through occlusions, discriminate threats from decoys, and generate angle measurements for navigation — using both classical geometric methods and learned representations where each approach excels. This is entry-level work blending traditional robotics perception with modern ML. You'll implement Extended Kalman Filters, train neural networks in PyTorch, write C++ flight code, and see your algorithms operate in orbit. This is a 3 month temporary employment engagement. There is potential to convert to regular employment based on performance and business need. RESPONSIBILITIES Implement classical tracking algorithms: Extended Kalman Filters for state estimation, Hungarian algorithm for data association, track management logic (tentative/confirmed/coasted tracks) Train neural networks for detection and classification: YOLO for object detection, ResNet-based classifiers for threat discrimination, learned appearance features for re-identification Build hybrid perception pipelines: neural network detections → classical tracking → coordinate transformations → angle-only measurements for navigation Develop image processing chains: hot pixel filtering, adaptive thresholding, centroiding, connected component analysis, star catalog matching Deploy models to edge hardware: quantize neural networks (INT8), integrate with C++ inference engines (ONNX Runtime, TensorRT), optimize for space-qualified processors Implement coordinate transformations: pixel → camera frame → body frame → Earth-Centered Inertial (ECI), accounting for lens distortion and attitude uncertainty Generate synthetic training data: render spacecraft in Blender with domain randomization (lighting, attitudes, backgrounds), create labeled datasets for rare scenarios Validate end-to-end performance: software-in-the-loop simulation, processor-in-the-loop testing, hardware-in-the-loop with real camera feeds QUALIFICATIONS Currently pursuing or recently completed Bachelor's or Master's degree in computer science, electrical engineering, robotics, aerospace engineering, or related technical field Coursework in both computer vision and estimation theory (or willingness to learn both) Proficiency in Python; some exposure to C++ (we'll teach you more) Familiarity with either classical tracking (Kalman filters, data association) OR deep learning (PyTorch, training neural networks) Understanding of linear algebra, probability, and coordinate transformations Ability to read research papers from both robotics (ICRA, IROS) and ML venues (CVPR, NeurIPS) and implement algorithms Strong debugging skills: tracking down lost tracks, numerical instability, and model failure modes Eagerness to learn the intersection of classical perception and modern ML U.S. Citizen (required for facility access and government contracts) PREFERRED SKILLS AND EXPERIENCE Experience with Extended Kalman Filters, multi-object tracking, or state estimation Familiarity with neural network training in PyTorch or TensorFlow: object detection (YOLO, Faster R-CNN), classification, or segmentation Understanding of coordinate frames: camera intrinsics/extrinsics, quaternions, rotation matrices, ECI/LVLH/RIC frames Exposure to model optimization for edge deployment: quantization (INT8, FP16), ONNX, TensorRT Experience with OpenCV, image processing pipelines, or classical feature extraction Coursework in optimal estimation, sensor fusion, or probabilistic robotics (Kalman/particle filters) Prior work with synthetic data generation, Blender/Unreal for rendering, or domain randomization Understanding of data association algorithms: Hungarian algorithm, auction algorithm, JPDA Familiarity with tracking-by-detection pipelines: detection → association → update → track management Experience debugging visual systems: false positives, missed detections, track ID switches, covariance tuning Prior internship or project deploying algorithms to embedded systems (Jetson, mobile, ROS) Exposure to multi-modal perception: fusing camera + IMU, camera + lidar, or learned sensor fusion COMPENSATION Base Salary: Denver: $75,000 Long Beach: $80,000 Your actual level and base salary will be determined on a case-by-case basis and may vary based on the following considerations: job-related knowledge and skills, education, location, and experience. ADDITIONAL REQUIREMENTS Work Location—Successful candidates will be located near Centennial, CO or Long Beach, CA. Work environment—the work environment; temperature, noise level, inside or outside, or other factors that will affect the person's working conditions while performing the job. Physical demands—the physical demands of the job, including bending, sitting, lifting and driving. This position will be open until it is successfully filled. To submit your application, please follow the directions below. #LI-Onsite To conform to U.S. Government space technology export regulations, including the International Traffic in Arms Regulations (ITAR) you must be a U.S. citizen, lawful permanent resident of the U.S., protected individual as defined by 8 U.S.C. 1324b(a)(3), or eligible to obtain the required authorizations from the U.S. Department of State. True Anomaly is committed to equal employment opportunity on any basis protected by applicable state and federal laws. If you have a disability or additional need that requires accommodation, please do not hesitate to let us.

Requirements

  • Computer Vision
  • Deep Learning
  • Python
  • C++
  • PyTorch
  • Extended Kalman Filters
  • Multi-object Tracking
  • Neural Networks
  • Coordinate Transformations
  • Image Processing
  • TensorRT
  • ONNX Runtime
  • Linear Algebra
  • Probability
  • Sensor Fusion
  • Robotics

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