Manufacturing Innovation Advanced Technology Engineer

Work4ce Inc

Georgetown (KY)

On-site

USD 110,000 - 160,000

Full time

3 days ago
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Benefits offered by this job

100% premiums for medical, dental, and
17 PTO days
8 paid holidays
401K match
Paid OT

Job summary

Work4ce Inc. seeks a Manufacturing Innovation Advanced Technology Engineer to advance computer vision for defect detection and real-time inspection in automotive manufacturing. You will design, train, and deploy edge AI models, optimize for embedded hardware, and integrate with PLCs and OPC-UA/MQTT networks.

You will lead data campaigns, manage vendors, and drive production-ready AI solutions with containerized software aimed at improving manufacturing competitiveness.

Qualifications

  • Bachelor’s degree in Electrical Engineering, Mechanical Engineering, Computer Science, Information Technology or related field.
  • 5 years of experience in industrial machine vision and edge AI deployment.
  • Proficiency in Python and C++ with strong knowledge of ML frameworks (PyTorch, TensorFlow).
  • Hands-on experience with containerization (Docker) and orchestration (Kubernetes).
  • Experience integrating vision systems with PLCs and industrial protocols (OPC-UA, MQTT).
  • Experience managing the full model lifecycle: data collection, labeling, validation, rollout, monitoring, and retraining
  • Experience in object detection, classification, segmentation and familiarity with mainstream object detection and semantic/instance segmentation models.
  • Familiarity with industrial cameras, lighting, and optics, including trigger-based image capture.

Responsibilities

  • Balance inspection accuracy with false positives vs flow-out risk in quality.
  • Design and implement computer vision models for defect detection, segmentation, and classification.
  • Accelerate training cycles using synthetic data, active learning, and domain randomization.
  • Production Deployment.
  • Package models and services using Docker and manage deployments through Kubernetes or equivalent orchestration tools.
  • Implement version control, rollback strategies, and observability for latency, drift, and false-positive/false-negative metrics.
  • Edge Optimization.
  • Optimize inference for edge and embedded hardware (e.g., NVIDIA Jetson, Intel accelerators) to meet strict real-time latency requirements for moving-line inspection.
  • Ensure consistent performance under varying lighting, optics, and surface conditions.
  • Integration with Manufacturing Systems.
  • Integrate vision systems with PLCs, encoders, triggers, and industrial networks using OPC-UA, MQTT, and REST protocols.
  • Lead data collection campaigns, manage annotation workflows, and establish quality gates for model validation.
  • Utilize synthetic data pipelines and augmentation techniques to improve model robustness and reduce training time.
  • Reliability & Sustainment.
  • Ensure uptime and availability targets are met through proactive monitoring, calibration (MSA), and backup/restore processes.
  • Develop and deploy production-grade machine learning models for industrial vision inspection systems across manufacturing lines.
  • Accelerating model development and training using advanced techniques such as synthetic data generation, ensuring high accuracy and generalization, and delivering containerized software optimized for edge hardware.
  • Development of new technologies for Manufacturing competitiveness improvement
  • Lead and manage projects from concept to launch for new technology first introduction to manufacturing including creating schedules, establishing punch lists, and meeting established due dates and milestones.
  • Search for innovative solutions, test them in a manufacturing setting, and develop business case justification to gain approval to purchase if trials prove successful.

Skills

Python
C++
ML frameworks
Edge AI deployment

Education

Bachelor’s degree in Electrical/Mechanical/CS/IT
Master’s degree (preferred)

Tools

Docker
Kubernetes
ONNX Runtime
TensorRT
OPC-UA
MQTT
NVIDIA Jetson
Git

Job description

We are seeking a highly skilled Manufacturing Innovation Advanced Technology Engineer to join our dynamic engineering team for a Major Automotive Client!

What makes our team stand out? Several things, but one of the most important things is that we offer AMAZING benefits! We pay 100% for your medical, dental and vision benefit premiums. We also offer 17 PTO days, 8 Paid holidays, 401K match, and Paid OT.

The primary responsibility of this role is:

Reporting to the Manufacturing Innovation Manager, the person in this role will support the Production Engineering Division and SOAR Group’s objective to improve manufacturing competitiveness.

What you’ll be doing:

  • Experience balancing inspection accuracy with false positives vs flow-out risk in quality
  • Design and implement computer vision models for defect detection, segmentation, and classification.
  • Accelerate training cycles using synthetic data, active learning, and domain randomization to cover rare defects and specification variance.
  • Production Deployment
  • Package models and services using Docker and manage deployments through Kubernetes or equivalent orchestration tools.
  • Implement version control, rollback strategies, and observability for latency, drift, and false-positive/false-negative metrics.
  • Edge Optimization
  • Optimize inference for edge and embedded hardware (e.g., NVIDIA Jetson, Intel accelerators) to meet strict real-time latency requirements for moving-line inspection.
  • Ensure consistent performance under varying lighting, optics, and surface conditions.
  • Integration with Manufacturing Systems
  • Integrate vision systems with PLCs, encoders, triggers, and industrial networks using OPC-UA, MQTT, and REST protocols.
  • Align deployments with IC…?
  • Data Strategy & Quality Control
  • Lead data collection campaigns, manage annotation workflows, and establish quality gates for model validation.
  • Utilize synthetic data pipelines and augmentation techniques to improve model robustness and reduce training time.
  • Reliability & Sustainment
  • Ensure uptime and availability targets are met through proactive monitoring, calibration (MSA), and backup/restore processes.
  • Implement drift detection, audit false-out risks, and perform root cause analysis for inspection failures.
  • Develop and deploy production-grade machine learning models for industrial vision inspection systems across manufacturing lines.
  • Accelerating model development and training using advanced techniques such as synthetic data generation, ensuring high accuracy and generalization, and delivering containerized software optimized for edge hardware
  • Development of new technologies for Manufacturing competitiveness improvement
  • Lead and manage projects from concept to launch for new technology first introduction to manufacturing including creating schedules, establishing punch lists, and meeting established due dates and milestones.
  • Search for innovative solutions, test them in a manufacturing setting, and develop business case justification to gain approval to purchase if trials prove successful.

Required Skills/Experience:

  • Ability to travel to all North American Manufacturing Centers (NAMC’s)-- including Canada and Mexico; and to Japan
  • Experience with project management including writing detailed scope of work, creating schedules, managing vendors/contractors, and providing regular status updates
  • Bachelor’s degree in Electrical Engineering, Mechanical Engineering, Computer Science, Information Technology or related field.
  • 5 years of experience in industrial machine vision and edge AI deployment.
  • Proficiency in Python and C++ with strong knowledge of ML frameworks (PyTorch, TensorFlow).
  • Hands-on experience with containerization (Docker) and orchestration (Kubernetes).
  • Familiarity with ONNX Runtime, TensorRT, and optimization for embedded hardware.
  • Experience integrating vision systems with PLCs and industrial protocols (OPC-UA, MQTT).
  • Experience managing the full model lifecycle: data collection, labeling, validation, rollout, monitoring, and retraining
  • Experience in areas such as object detection, classification, segmentation and familiarity with mainstream object detection and semantic/instance segmentation models.
  • Familiarity withindustrial cameras, lighting, and optics, including trigger-based image capture

Desired / Preferred Key Competencies

  • Master’s Degree in Engineering or Advanced Degree in related fields
  • Academic research experience in new technology
  • Project management work involving internal and external parties – 6 months or greater
  • Experience deploying equipment including establishing RJ, PFMEA, and quality control plan
  • Experience in Robotics to include operation, teaching, maintenance, and safety
  • Expertise in synthetic data generation techniques (GANs, VAEs, NeRFs, Blender) and domain randomization for model generalization.
  • Experience with high-speed inline inspection systems and vision-based process control.
  • Knowledge of IIoT data pipelines and messaging standards.
  • Strong understanding of calibration, measurement system analysis (MSA), and quality-critical inspection requirements.
  • Ability to deliver production-ready AI solutions under strict timelines.
  • Strong problem-solving and cross-functional collaboration skills.
  • Commitment to quality, reliability, and continuous improvement in manufacturing environments
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