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Manager Nvidia Autonomous Driving Jobs in Georgia

CA$140K/yr

... and autonomous driving. Our customers include some of the world's largest airlines and ground ... Intuition, Foretellix, NVIDIA Omniverse, IsaacSim, Gazebo, or a proprietary in-house ...

... and autonomous driving. Our customers include some of the world's largest airlines and ground ... The Deployment & Release Manager is responsible for ensuring that AeroVect's Autonomous Ground ...

Own the intelligence of the autonomous system, ensuring that robust perception models enable ... platforms (TensorRT, NVIDIA stack). MLOps workflows and model lifecycle management. Travel ...

Own the intelligence of the autonomous system, ensuring that robust perception models enable ... platforms (TensorRT, NVIDIA stack). MLOps workflows and model lifecycle management. Travel ...

Own the intelligence of the autonomous system, ensuring that robust perception models enable ... platforms (TensorRT, NVIDIA stack). MLOps workflows and model lifecycle management. Travel ...

... Performance Group, driving prioritization, program execution, and value realization. This ... End-to-end project management for autonomous mining technology deployments (piloting, to ...

Autonomous vehicle Test Operator

Atlanta, GA ยท On-site

$17.50 - $21.75/hr

Company description Terry Soot Management Group (TSMG) is a field data collection company founded ... The Autonomous Vehicle Test Operator is responsible for operating and evaluating a self-driving ...

Autonomous vehicle Test Operator

Atlanta, GA

$17.50 - $21.75/hr

Company description Terry Soot Management Group (TSMG) is a field data collection company founded ... The Autonomous Vehicle Test Operator is responsible for operating and evaluating a self-driving ...

Service Technician - Quick Lube

Kennesaw, GA ยท On-site

$13 - $17.75/hr

Autonomous Kennesaw is looking for a dedicated and experienced Service Tech to join our dynamic ... Clean driving record. * Knowledge of DealerTrack DMS, Xtime. * Minimum of 2+ years of experience as ...

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Manager Nvidia Autonomous Driving information

What is the difference between Manager Nvidia Autonomous Driving vs Software Engineer Nvidia Autonomous Driving?

AspectManager Nvidia Autonomous DrivingSoftware Engineer Nvidia Autonomous Driving
Required CredentialsBachelor's/Master's in Engineering, Management experienceBachelor's/Master's in Computer Science or related field
Work EnvironmentTeam leadership, project management, cross-functional collaborationSoftware development, coding, testing, debugging
Employer & Industry UsageAutomotive tech companies, Nvidia, autonomous vehicle industryTech companies, Nvidia, autonomous vehicle projects

The main difference is that the Manager Nvidia Autonomous Driving oversees teams and projects related to autonomous vehicle technology, focusing on leadership and coordination. In contrast, the Software Engineer Nvidia Autonomous Driving is primarily involved in coding and developing the software components. Both roles require technical expertise, but the manager role emphasizes project management and team oversight.

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Cities in Georgia with the most Manager Nvidia Autonomous Driving job openings:

Senior Software Engineer, Simulation

AeroVect

On-site, Remote

CA$140K/yr

Full-time

Posted 25 days ago


Job 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.
You will own and extend the simulation tooling. A significant part of the role is test quality. A test suite that produces flaky failures does not provide usable information. Determinism, reproducibility, and verifying that each gate is capable of failing are ongoing responsibilities rather than one-off tasks.
You Will
  • Build and extend the capabilities of the simulation environment: integration with the production autonomy stack, the interfaces it consumes, vehicle and actor models, and the range of environmental and operational conditions that can be represented
  • Maintain and improve that integration as the autonomy stack evolves, including fidelity work where the difference between simulated and real inputs changes how the stack behaves
  • Build and operate scenario execution in the cloud: orchestration, parallelism, result aggregation, artifact capture, and runtime cost modelling
  • Build and extend the evaluation layer that turns a run into a verdict - assertions and pass/fail criteria precise enough to gate a release and stable enough to avoid false failures
  • Build failure-triage tooling: failure clustering, per-failure recordings, and dashboards that autonomy engineers can use without assistance
  • Extend the scenario authoring tooling used by the V&V team, across backend and frontend
  • Maintain simulation foundations: determinism and reproducibility, pipeline performance, and extending coverage to additional maps and sites

You Have
  • Bachelor's in Computer Science, Electrical Engineering, Robotics, or related field
  • Strong Python, with a track record of maintainable code in a shared codebase
  • Hands-on simulation experience for autonomous systems, familiarity with simulation platforms such as CARLA, Applied Intuition, Foretellix, NVIDIA Omniverse, IsaacSim, Gazebo, or a proprietary in-house simulatorWorking knowledge of simulation, modelling, and validation methodology, including how simulated results are used to support claims about real-world behaviour
  • Docker and Linux, distributed-systems fundamentals, and experience with GPU-based simulation environmentsCI/CD and cloud execution, experience integrating automated test workflows into CI for end-to-end validation coverage
  • Experience analyzing simulation output and telemetry to identify performance bottlenecks and failure modes
  • Debugging and profiling skills suited to distributed, GPU-bound systems

We Prefer
  • Master's in Computer Science, Robotics, or related field
  • Experience designing and validating safety-critical systems in autonomous driving, aerospace, or robotics
  • Experience developing or maintaining autonomous vehicle software stacks (ROS/ROS2)
  • Cloud-based simulation infrastructure and large-scale distributed test execution
  • Sensor modelling (camera, lidar, radar), environment generation, or perception ground-truth pipelines
  • Automated testing, continuous integration, and data-driven validation
  • Log/bag re-simulation from recorded real-world data
  • Test-signal quality work: flake reduction, determinism debugging, golden-output comparison
  • Safety standards exposure: ISO 26262, ISO 21448 (SOTIF), UL4600, ISO 13849