Senior Software Engineer (Perception)

Shield AI

Washington

On-site

USD 180,000 - 240,000

Full time

14 days+
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Benefits offered by this job

Excellent Medical Coverage
Mental Health Employee Assistance Plan
Paid Parental Leave
Pet Insurance
Flexible Work Hours
Onsite Gym (DC)
Gym Discount (San Diego)
Free Parking
Competitive Compensation
Stock Benefits
401K Services and Match

Job summary

Shield AI is hiring engineers to develop and deploy state-of-the-art perception models for autonomous systems. You will own features from model development to deployment, collaborating with researchers, perception engineers, autonomy engineers, and platform teams to bring cutting-edge AI into production.

The role focuses on vision-, vision-language-, and vision-language-action models, plus scalable data pipelines and SFT workflows for mission-critical environments.

Qualifications

  • Experience training and deploying ML models for computer vision in production
  • Proficiency in ML fundamentals
  • Experience with ML frameworks such as PyTorch and TensorFlow
  • Demonstrated expertise deploying models using TensorRT and ONNX
  • Proficiency in C++ and Python
  • Strong analytical and problem-solving skills
  • Strong understanding of 3D vision problems/algorithms
  • Typically requires a minimum of 5 years of related experience with a Bachelor’s degree; or 4 years and a Master’s degree; or 2 years with a PhD; or equivalent work experience
  • Ability to obtain a SECRET clearance
  • Experience with developing autonomous systems for defense customers
  • Experience with training/finetuning vision-language models, vision-language-action models, and/or world models
  • Contributions to open-source projects in machine learning or computer vision
  • Track record of publications in leading computer vision and robotics conferences and journals (e.g., CVPR, ICCV/ECCV, RAL, ICRA)

Responsibilities

  • Model Development – Design, train, fine-tune, and maintain state-of-the-art vision, vision-language, and vision-language-action models that improve perception and decision-making for autonomous systems
  • Data Pipelines & Model Training – Build scalable data pipelines, supervised fine-tuning (SFT) workflows, and evaluation loops that continuously improve model performance on mission-relevant tasks
  • Model Deployment & Optimization – Deploy and optimize machine learning models for embedded hardware using technologies such as ONNX, TensorRT, and hardware-accelerated inference frameworks
  • Perception & Autonomy Applications – Apply modern machine learning techniques to solve challenging perception and autonomy problems across aerial and other autonomous systems operating in complex, real-world environments
  • Research-to-Production – Translate cutting-edge machine learning research into production-ready capabilities by balancing model performance, robustness, computational efficiency, and operational reliability
  • Cross-functional Collaboration – Partner closely with perception, autonomy, platform, and software engineering teams to integrate machine learning capabilities into mission-ready autonomous systems
  • Model Evaluation & Validation – Develop benchmarks, testing methodologies, and evaluation frameworks to measure model performance, identify failure modes, and guide future improvements
  • Continuous Improvement – Improve training infrastructure, developer tooling, deployment workflows, and model lifecycle management to accelerate experimentation and production delivery

Skills

PyTorch
TensorFlow
C++
Python
3D vision
ML fundamentals
Model deployment

Education

Bachelor’s degree or higher

Tools

ONNX
TensorRT

Job description

  • The Hivemind Solutions Perception team develops the next generation of perception capabilities for autonomous systems by combining state-of-the-art machine learning with the proven foundations of computer vision
  • The team advances how autonomous platforms understand and interpret the world by developing vision, vision-language (VLM), and vision-language-action (VLA) models that tackle core perception challenges such as object understanding, scene interpretation, and mission-relevant environmental awareness
  • Working at the intersection of research and production, our engineers build the data pipelines, supervised fine-tuning (SFT) workflows, evaluation frameworks, and deployment infrastructure needed to transform cutting-edge AI research into reliable, mission-ready perception capabilities
  • In this role, you’ll develop and deploy advanced machine learning models that solve real-world perception challenges for autonomous systems
  • You’ll own major features from model development through deployment, working closely with machine learning researchers, perception engineers, autonomy engineers, and platform teams to bring cutting-edge AI capabilities into production
  • This is an ideal opportunity for engineers who enjoy solving difficult perception problems while building reliable, production-ready ML systems that operate on autonomous platforms in complex operational environments
  • Model Development – Design, train, fine-tune, and maintain state-of-the-art vision, vision-language, and vision-language-action models that improve perception and decision-making for autonomous systems
  • Data Pipelines & Model Training – Build scalable data pipelines, supervised fine-tuning (SFT) workflows, and evaluation loops that continuously improve model performance on mission-relevant tasks
  • Model Deployment & Optimization – Deploy and optimize machine learning models for embedded hardware using technologies such as ONNX, TensorRT, and hardware-accelerated inference frameworks
  • Perception & Autonomy Applications – Apply modern machine learning techniques to solve challenging perception and autonomy problems across aerial and other autonomous systems operating in complex, real-world environments
  • Research-to-Production – Translate cutting-edge machine learning research into production-ready capabilities by balancing model performance, robustness, computational efficiency, and operational reliability
  • Cross-functional Collaboration – Partner closely with perception, autonomy, platform, and software engineering teams to integrate machine learning capabilities into mission-ready autonomous systems
  • Model Evaluation & Validation – Develop benchmarks, testing methodologies, and evaluation frameworks to measure model performance, identify failure modes, and guide future improvements
  • Continuous Improvement – Improve training infrastructure, developer tooling, deployment workflows, and model lifecycle management to accelerate experimentation and production delivery
Benefits
  • Excellent Medical Coverage
  • Mental Health Employee Assistance Program
  • Paid Parental Leave
  • Pet Insurance
  • Flexible Work Hours
  • Onsite Gym (DC)
  • Gym Discount (San Diego)
  • Free Parking
  • Competitive Compensation
  • Stock Benefits
  • 401K Services and Match
  • Experience training an deploying ML models for computer vision in a production setting
  • Prioficiency of machine learning fundamentals
  • Experience with machine learning frameworks such as PyTorch and TensorFlow
  • Demonstrated expertise in deploying models using TensorRT and ONNX
  • Proficiency in C++ and Python
  • Strong analytical and problem-solving skills, with the ability to translate research into practical applications
  • Strong understanding of 3D vision problems/algorithms
  • Typically requires a minimum of 5 years of related experience with a Bachelor’s degree; or 4 years and a Master’s degree; or 2 years with a PhD; or equivalent work experience
  • Ability to obtain a SECRET clearance
  • Experience with developing autonomous systems for defense customers
  • Experience with training/finetuning vision-language models, vision-language-action models, and/or world models
  • Contributions to open-source projects in machine learning or computer vision
  • Track record of publications in leading computer vision and robotics conferences and journals (e.g., CVPR, ICCV/ECCV, RAL, ICRA)
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