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Senior Machine Learning Engineer

Canopy
CompanyCanopy
CategoryEngineering
LocationDetroit
RemoteRemote
EmploymentFull-time
LevelSenior
SalaryNot stated by the employer
Posted26 Jan 2026
Last verified30 Jul 2026
SourceEmployer career page (workable)
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Description
As a Senior Machine Learning Engineer within the AI Squad at Canopy and reporting to the Director of AI Engineering, you’ll contribute to the development of cutting-edge AI solutions to combat vehicle and content theft. In this senior role, you’ll play a pivotal part in shaping our AI roadmap, mentoring junior engineers, and influencing system architecture decisions. This is a high-impact role with visibility across engineering and product leadership. Responsibilities:  Contribute to the design, development, and deployment of robust machine learning models for production use in real-world security applications. Develop within the full machine learning lifecycle; from problem definition to data pipeline design, model development, validation, deployment, and monitoring.  Establish and refine best practices in our ML system architecture, CI/CD pipelines for ML, and reproducible research methodologies.  Collaborate with cross-functional stakeholders including product managers, data engineers, and MLOps teams to ensure seamless model integration and delivery. Perform advanced exploratory data analysis on large-scale sensory datasets (image, audio, radar, accelerometer) to derive insights and guide modeling strategies. Stay ahead of industry advancements in machine learning, AI sensing, and signal processing, incorporating the latest innovations into Canopy’s technology stack. Mentor and guide junior engineers and contribute to the hiring process and technical reviews. Requirements 5+ years of professional experience developing and implementing ML for perception systems with expertise in at least one of either RADAR, camera, or LiDAR.  Bachelor’s degree in Computer Science, Data Science, Engineering, or a related field. Expertise in Python with extensive experience in at least one deep learning framework (PyTorch or TensorFlow. Proven ability to develop production-grade ML applications for training, evaluation and inference on large-scale datasets.  Experience creating C/C++ applications utilizing modern language features and build systems, preferably for porting ML inference applications from Python to edge devices/embedded systems. White-box understanding of classical ML algorithms (SVMs, HMMs, Decision Trees) and modern neural network models and architectures (CNNs, transformers) with significant experience applying them for perception systems. Experience implementing and applying dynamic object tracking, with experience using sensor fusion as a preference.   Proficiency in Unix-based environments (Linux, macOS) including working with remote servers and services, virtual computers and clusters.  Proficiency in signal processing techniques such as time/frequency-domain processing (e.g. Fourier Transform), filtering, and noise reduction.   Preferred Qualifications: Experience in deploying models to edge hardware, including experience with PyTorch and ONNX and model compression techniques, e.g. quantisation and pruning. Experience using cloud computing platforms, e.g., AWS or GCP. Experience with MATLAB for algorithm prototyping and research. Experience with Docker or containerisation.  Reside within the Detroit area or nearby, with the ability to work in a hybrid environment and regularly commute to our Detroit office as needed. Benefits Comprehensive medical benefits coverage, dental plans and vision coverage. Health care and dependent care spending accounts. Employee and Family Assistance Program (EAP). Employee discount programs. Retirement plan with a generous company match. Generous Paid Time Off, Sick, and Holidays Family Leave (Maternity, Paternity) Short- and long-term disability Life insurance and accidental death & dismemberment insurance Compensation Range Compensation may vary depending on skills and experience. Base Salary: $126,000 - $180,000 Diversity, Equity and Incl
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