Forward Deployed Engineer

Raydar

$144K — $200K *
US-AnywhereRemote in United States
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 1-8 years in forward deployed engineering, field engineering, solutions architecture, or related roles
  • Proven ownership of technical deployments from build to production
  • Strong Python development skills in production environments
  • Hands-on with Docker, Kubernetes, networking, and Linux
  • Experience in computer vision, MLOps, or edge computing
  • Strong communication skills with diverse stakeholders
  • Ability to work independently in challenging environments

Responsibilities

  • Oversee technical deployments from initial build to production and maintenance
  • Engage on-site with customers for 40-50% of work
  • Develop and configure data pipelines and edge devices
  • Write production-grade Python for various technical challenges
  • Collaborate with Docker, Kubernetes, Linux, and other systems
  • Build trust with customer executives and operators
  • Share field insights with Product and Engineering teams

Benefits

  • Full family health insurance coverage
  • $4,000 annual travel stipend
  • $350 monthly productivity stipend
  • $350 monthly budget for AI tools
  • Remote-first work environment in the U.S. with flexible hours
Full Job Description
This Forward Deployed Engineer will take customer computer vision deployments from validated proof of concept to reliable production operation. You will embed with strategic customers, build the technical system around their use case, and solve problems that appear only in factories, warehouses, construction sites, and other physical environments.

What you will do:
• Own customer-facing technical deployments from zero-to-one build through adoption, production launch, and post-deployment maintenance.
• Embed on-site with customers approximately 40% to 50% of the time to move validated proofs of concept into production.
• Build and configure data pipelines, edge devices, computer vision models, and supporting infrastructure.
• Write production-grade Python and solve issues involving lighting variability, camera calibration, model drift, networking, and edge-hardware constraints.
• Work across Docker, Kubernetes, Linux, NVIDIA Jetson, industrial cameras, computer vision, MLOps, and edge-computing systems.
• Build trust with customer executives, engineers, and floor operators.
• Surface field insights to Product and Engineering and improve the core platform.
• Document deployment architectures, create runbooks, and hand successful customers to implementation teams.

Requirements
• Approximately 1 to 8 years of experience in forward deployed engineering, field engineering, solutions architecture, customer-facing software engineering, or a closely related role.
• Demonstrated ownership of a full customer-facing technical deployment from initial build through production adoption and maintenance.
• Strong Python software engineering skills and experience shipping production systems.
• Hands-on experience with systems-level work using Docker, Kubernetes, networking, and Linux.
• Experience with computer vision, MLOps, edge computing, robotics, automation, industrial software, IoT, or related physical systems.
• Ability to communicate and build trust with executives, engineers, and front-line operators.
• Highly motivated, coachable, low-ego, eager to learn, responsive to feedback, and collaborative.
• Comfort working independently in ambiguous field environments and taking responsibility for follow-through.
• Willingness and ability to travel approximately 40% to 50% for customer deployments.
• Bachelor's degree in computer science, engineering, or a related technical field.
• Unrestricted authorization to work in the United States. Visa sponsorship and transfers are not available.

Nice to have: experience in manufacturing, logistics, automotive, robotics, automation, NVIDIA Jetson, industrial cameras, model monitoring, retraining pipelines, personal hardware projects, or other hands-on physical-system deployments.

Benefits

$144,000 to $200,000 base salary and $180,000 to $250,000 on-target earnings with uncapped variable compensation, plus competitive equity. Benefits include full family health-insurance coverage, a $4,000 annual travel stipend, a $350 monthly productivity stipend, and a $350 monthly AI-tools budget. Remote-first within the United States, aligned with U.S. daytime hours, with approximately 40% to 50% travel. Midwest cities and major travel hubs are strongly preferred.

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