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Machine Learning Engineer, Detection and Tracking

Helsing · On-site

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Last seen by MeritLog September 12, 2026Source: GreenhouseSource version: greenhouse-job-board-v1

MeritLog read this listing from Helsing's Greenhouse job board and last checked it on September 12, 2026.

Source: the employer's Greenhouse job board. Open the original listing for current details.

Job details

Work model
On-site
Salary
Not listed by source
Location
Washington, DC
Occupation
Computer Systems Engineers/Architects(O*NET 15-1299.08)

Hiring context

How this role compares at Helsing

Helsing has 149 live roles in MeritLog’s catalog across 11 job families, and 37 of them are in data & analytics. 0 of those listings publish a pay range, a disclosure rate of 0%.

Helsing concentrates this hiring in:

Counted across the job boards MeritLog tracks, at the time this page was served. Pay comparisons use only listings that publish a complete range in the same currency and period.

What the role asks for

What you'd do

  • Training and fine-tuning detection models (YOLO, DETR, Faster R-CNN, and similar architectures) on mission-specific datasets
  • Implementing and improving multi-object tracking pipelines (SORT, DeepSORT, ByteTrack, or similar)
  • Evaluating model performance: analyzing metrics, diagnosing failure modes, and iterating on data and model improvements
  • Managing the data pipeline end-to-end: assessing raw data, coordinating annotation, curating datasets, and implementing augmentation strategies
  • Optimizing models for deployment on SWaP-constrained and embedded platforms (quantization, pruning, TensorRT, ONNX export)
  • Collaborating with systems engineers to integrate models into the broader Altra platform
  • Working across sensor modalities as needed, including electro-optical, infrared, and other imaging sources
  • Have 5+ years of experience in applied machine learning or computer vision
  • Have a Bachelor's degree in Computer Science, Electrical Engineering, or a related field; Master's or PhD strongly preferred
  • Have production experience training and deploying object detection models - not just research or academic projects
  • Are proficient in Python and PyTorch or a comparable deep learning framework
  • Have strong intuition for data quality; you can look at annotated datasets, training curves, and evaluation metrics and know what's wrong
  • Have experience with the full model training lifecycle: data curation, annotation management, training, evaluation, and deployment
  • Have experience optimizing models for deployment on SWaP-constrained and edge platforms (TensorRT, ONNX, quantization)
  • Understand multi-object tracking and have implemented or worked with tracking algorithms in practice
  • Can read and contextualize scientific papers in computer vision and apply findings to production systems
  • U.S. citizenship required

What they're asking for

  • Strong proficiency in Rust or C++ for production model deployment and optimizationSkillPreferred
  • Experience with multiple sensor modalities - particularly infrared or thermal imagingSkillPreferred
  • Familiarity with MLOps tooling: experiment tracking (MLflow, Weights & Biases), dataset versioning, model registriesSkillPreferred
  • Experience with annotation tools and workflows (CVAT, Label Studio, or similar)SkillPreferred
  • Background in computer vision beyond detection - segmentation, pose estimation, activity recognitionSkillPreferred
  • Experience with simulators, emulators, or synthetic data generation for training and evaluationSkillPreferred
  • Experience deploying models on GPU-accelerated embedded platforms (NVIDIA Jetson, similar)SkillPreferred
  • Background in defense, intelligence, or other mission-critical environmentsSkillPreferred

Parsed by MeritLog from the employer’s own posting. The full description follows below.

Job description

Who we are Helsing develops artificial intelligence-enabled capabilities to protect and defend democracies. We build Altra, an AI-powered drone software platform, and HX-2, our autonomous drone. We are growing our US operations, cultivating an ambitious and committed team of mission-driven professionals to apply their skills to solve challenging problems. The role You will own the detection and tracking models that power Helsing's products - training, tuning, and deploying models against US-specific datasets. This is an applied ML role: you won't be writing research papers, but you will be expected to have strong intuition for model performance, data quality, and the practical trade-offs involved in getting detection and tracking systems to work reliably in production. You will manage the full model lifecycle - from assessing and curating training data through annotation, training, evaluation, and deployment to edge platforms. The day-to-day • Training and fine-tuning detection models (YOLO, DETR, Faster R-CNN, and similar architectures) on mission-specific datasets • Implementing and improving multi-object tracking pipelines (SORT, DeepSORT, ByteTrack, or similar) • Evaluating model performance: analyzing metrics, diagnosing failure modes, and iterating on data and model improvements • Managing the data pipeline end-to-end: assessing raw data, coordinating annotation, curating datasets, and implementing augmentation strategies • Optimizing models for deployment on SWaP-constrained and embedded platforms (quantization, pruning, TensorRT, ONNX export) • Collaborating with systems engineers to integrate models into the broader Altra platform • Working across sensor modalities as needed, including electro-optical, infrared, and other imaging sources You should apply if you • Have 5+ years of experience in applied machine learning or computer vision • Have a Bachelor's degree in Computer Science, Electrical Engineering, or a related field; Master's or PhD strongly preferred • Have production experience training and deploying object detection models - not just research or academic projects • Are proficient in Python and PyTorch or a comparable deep learning framework • Have strong intuition for data quality; you can look at annotated datasets, training curves, and evaluation metrics and know what's wrong • Have experience with the full model training lifecycle: data curation, annotation management, training, evaluation, and deployment • Have experience optimizing models for deployment on SWaP-constrained and edge platforms (TensorRT, ONNX, quantization) • Understand multi-object tracking and have implemented or worked with tracking algorithms in practice • Can read and contextualize scientific papers in computer vision and apply findings to production systems • U.S. citizenship required Nice to have • Strong proficiency in Rust or C++ for production model deployment and optimization • Experience with multiple sensor modalities - particularly infrared or thermal imaging • Familiarity with MLOps tooling: experiment tracking (MLflow, Weights & Biases), dataset versioning, model registries • Experience with annotation tools and workflows (CVAT, Label Studio, or similar) • Background in computer vision beyond detection - segmentation, pose estimation, activity recognition • Experience with simulators, emulators, or synthetic data generation for training and evaluation • Experience deploying models on GPU-accelerated embedded platforms (NVIDIA Jetson, similar) • Background in defense, intelligence, or other mission-critical environments Join Helsing and work with world-leading experts in their fields • Helsing’s work is important. You’ll be directly contributing to the protection of democratic countries while balancing both ethical and geopolitical concerns • The work is unique. We operate in a domain that has highly unusual technical requirements and constraints, and where robustness, safety, and ethical considerations are vital. You will face unique Engineering and AI challenges that make a meaningful impact in the world • Our work frequently takes us right up to the state of the art in technical innovation, be it reinforcement learning, distributed systems, generative AI, or deployment infrastructure. The defense industry is entering the most exciting phase of the technological development curve. Advances in our field of world are not incremental: Helsing is part of, and often leading, historic leaps forward • In our domain, success is a matter of order-of-magnitude improvements and novel capabilities. This means we take bets, aim high, and focus on big opportunities. Despite being a relatively young company, Helsing has already been selected for multiple significant government contracts • We actively encourage healthy, proactive, and diverse debate internally about what we do and how we choose to do it. Teams and individual engineers are trusted (and encouraged) to practice responsible autonomy and critical thinking, and to focus on outcomes, not conformity. At Helsing you will have a say in how we (and you!) work, the opportunity to engage on what does and doesn’t work, and to take ownership of aspects of our culture that you care deeply about What we offer • A focus on outcomes, not time-tracking • A generous compensation and benefits package (in addition to base salary) that includes, but may not be limited to, insurance coverage (medical and travel), flexible paid time off, paid holidays, and remote and/or hybrid work available depending on position. All compensation and benefits are subject to the terms and conditions of the underlying plans or programs, as applicable and as may be amended, terminated or superseded from time to time. Helsing is an Equal Opportunity Employer. We will consider all qualified applicants without regard to race, color, sex, sexual orientation, gender identity, national origin, age, disability, protected veteran status, genetics, or any other characteristic protected by applicable federal, state, or local law. Please do not submit personal data revealing racial or ethnic origin, political opinions, religious or philosophical beliefs, trade union membership, data concerning your health, or data concerning your sexual orientation. Helsing's Candidate Privacy and Confidentiality Regime can be found here.

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