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Software Engineer, ML Ops

Aerovect
CompanyAerovect
CategoryEngineering
LocationToronto
RemoteOn-site (inferred)
EmploymentNot stated
LevelNot stated
SalaryUSD 124k–155k
Posted17 Jul 2026
Last verified31 Jul 2026
SourceEmployer career page (ashby)
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Description
WHO WE ARE AeroVect is transforming ground handling with autonomy, redefining how airlines and ground service providers around the globe run day-to-day operations. We are a Series A company backed by top-tier venture capital investors in aviation and autonomous driving. Our customers include some of the world’s largest airlines and ground handling providers. For more information, visit www.aerovect.com http://www.aerovect.com. YOU WILL - Build and maintain data pipelines to ingest field data (rosbags, sensor logs, telemetry) from our fleet - Convert raw field data into curated, versioned datasets for the perception team and own dataset management - storage, indexing, querying, and vending datasets - Set up training workflows and optimize cloud costs - Build tooling to accelerate perception engineers' workflows - fast data access, reproducible experiments, automated evaluation pipelines - Generate metrics and diagnostics to track dataset health, model performance, and pipeline reliability YOU HAVE - Bachelor's or Master's degree in Computer Science, Robotics, Data Engineering, or a related field - Strong Python proficiency and working knowledge of ROS2 - Working knowledge of docker and other DevOps tools - Familiarity with cloud storage and compute (AWS - S3, EC2, etc.) - Understanding of ML workflows and dataset versioning WE PREFER - Master's in Computer Science, Robotics, or a related discipline - 2+ years of MLOps or data infrastructure experience, ideally in robotics or autonomous systems - Experience with Weights & Biases, rosbag data, and large-scale sensor datasets - Working knowledge of C/C++ - Experience supporting perception or ML research teams Please note this role will be based onsite in Toronto
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