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Robotic Engineering Jobs in Georgia (NOW HIRING)

$14.75 - $20.25/hr

This role combines expertise in welding processes, robotics, automation, and manufacturing engineering to ensure high-quality weld production, maximize equipment uptime, and drive operational ...

... robotic systems. * Troubleshoot hardware, software, and communication issues throughout development and deployment. Required Qualifications * Master's degree in Mechanical Engineering, Electrical ...

Job Purpose: Robot engineer: New robot and replacement setup. Standard Operating Procedures ... Maintain software and firmware version control across all robotic assets to ensure system security ...

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Robotics Engineer

Lagrange, GA · On-site

$60K - $80K/mo

Doolim-Yaskawa offering Industrial Painting and Sealing Robot system and general robot system and technical service to customer as a global leader is 1) Robot Engineer ( Yaskawa manipulator ) 2) ...

... robotic systems that load and unload trailers faster, safer, and more reliably than traditional ... The Role We are looking for a Robotics Perception Engineer to own the sensing and perception stack ...

... robotic systems that load and unload trailers faster, safer, and more reliably than traditional ... The Role We are looking for a Robotics Perception Engineer to own the sensing and perception stack ...

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Robotic Welder

Evans, GA · On-site

$21 - $26/hr

They are responsible for robot designing/programming, welding robots' maintaining/troubleshooting, and implementing robotic welding for production . Robotic welding technicians are also accountable ...

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Robotic Engineering information

See Georgia salary details

$12

$23

$38

How much do robotic engineering jobs pay per hour?

As of Jul 27, 2026, the average hourly pay for robotic engineering in Georgia is $23.85, according to ZipRecruiter salary data. Most workers in this role earn between $18.65 and $27.79 per hour, depending on experience, location, and employer.

What jobs do robotic engineers do?

Robotic engineers design, develop, and test robotic systems and automation solutions for various industries. They work with sensors, actuators, programming languages, and control systems to create robots that perform specific tasks, often collaborating with multidisciplinary teams and utilizing CAD software. Their roles may include research, system integration, troubleshooting, and maintenance of robotic equipment.

What is robotic engineering?

Robotic engineering is a branch of engineering that involves the design, construction, operation, and maintenance of robots. It combines principles from mechanical engineering, electrical engineering, computer science, and control systems to create machines that can perform tasks autonomously or with human guidance. Robotic engineers work on developing robots for various industries, including manufacturing, healthcare, space exploration, and more. The field is rapidly evolving as technology advances, offering exciting opportunities for innovation and problem-solving.

What engineers make $300,000 a year?

Senior robotic engineers, especially those with extensive experience, advanced degrees, and expertise in areas like AI, automation, or control systems, can earn $300,000 or more annually. High-level roles often require leadership skills, specialized certifications, and work in industries such as aerospace, defense, or advanced manufacturing.

What is the difference between Robotic Engineering vs Mechanical Engineering?

AspectRobotic EngineeringMechanical Engineering
Required CredentialsBachelor's in Robotics, Mechanical, or Electrical Engineering; certifications in roboticsBachelor's in Mechanical Engineering; Professional Engineer (PE) license often preferred
Work EnvironmentDesign labs, manufacturing plants, research facilitiesManufacturing, design studios, research labs
Industry UsageRobotics companies, automation firms, tech startupsAutomotive, aerospace, manufacturing, energy
Common Search/ComparisonRobotic Engineering vs Mechanical Engineering

Robotic Engineering focuses on designing, developing, and maintaining robots and automation systems, often requiring specialized knowledge in robotics and programming. Mechanical Engineering covers a broader range of mechanical systems, including machinery, thermal systems, and structural components. While both fields share foundational engineering principles, Robotic Engineering emphasizes automation and control systems, making it more specialized for robotics applications.

What are the typical collaboration dynamics between robotic engineers and other teams during a project?

Robotic engineers frequently collaborate with multidisciplinary teams, including software developers, electrical engineers, and mechanical designers. During a project, they often participate in cross-functional meetings to ensure that hardware, software, and control systems are seamlessly integrated. Effective communication and problem-solving are essential, as robotic engineers may need to translate complex technical requirements between teams or troubleshoot issues that arise during development and testing. This collaborative environment fosters innovation and helps streamline the creation of advanced robotic solutions.

What are the key skills and qualifications needed to thrive as a Robotic Engineer, and why are they important?

To thrive as a Robotic Engineer, you need a solid background in mechanical engineering, electronics, computer science, and mathematics, often supported by a bachelor’s or master’s degree in robotics or a related field. Familiarity with programming languages (such as C++, Python, or ROS), CAD software, and robotics simulation tools is typically required, along with certifications in robotics or automation. Strong problem-solving skills, creativity, teamwork, and effective communication are essential soft skills that set top professionals apart. These competencies ensure the successful design, implementation, and maintenance of complex robotic systems in diverse industries.

What engineers make $500,000?

Senior robotic engineers, especially those in leadership roles or with specialized expertise in areas like AI, automation, or aerospace, can earn $500,000 or more annually. High compensation often requires extensive experience, advanced degrees, and skills in programming, systems integration, and project management, typically in industries such as aerospace, defense, or high-tech manufacturing.

Do robotic engineers make good money?

Robotic engineers typically earn competitive salaries that vary based on experience, education, and location. According to industry data, the median annual wage for robotic engineers is higher than the average for engineering roles, with opportunities for advancement and specialization in areas like automation and control systems.
What cities in Georgia are hiring for Robotic Engineering jobs? Cities in Georgia with the most Robotic Engineering job openings:
Infographic showing various Robotic Engineering job openings in Georgia as of July 2026, with employment types broken down into 91% Full Time, 6% Part Time, and 3% Contract. Highlights an 86% Physical, 4% Hybrid, and 10% Remote job distribution, with an average salary of $49,603 per year, or $23.8 per hour.
Robotic Welding Engineer

$14.75 - $20.25/hr

Full-time

Posted 10 days ago


Job description

Hendrick Technical SolutionsLocation: 4400 Papa Joe Hendrick Blvd, Charlotte, North Carolina 28262


Hendrick Technical Solutions provides a one-of-a-kind working experience where a diverse group of talented team members are committed to embracing innovation with the intensity to perform at the highest level, primarily focused on our work in theDefensesector.

Hendrick Technical Solutions continuously seeks skilled and talented individuals who are motivated and enthusiastic about helping us meet our goals.

To learn more about the exciting projects we are working on, click the links below.

www.hendrickusa.com

Inside Hendrick Motorsports manufacturing plant in Concord NC | Charlotte Observer

Position Summary:

The Robotic Welding Engineer is responsible for the development, implementation, optimization, and continuous improvement of automated robotic welding systems. This role combines expertise in welding processes, robotics, automation, and manufacturing engineering to ensure high-quality weld production, maximize equipment uptime, and drive operational efficiency. The engineer will work closely with production, maintenance, quality, and manufacturing teams to support both new product launches and ongoing production operations.

Key Responsibilities:

Robotic Welding System Development & Programming

  • Develop, program, and optimize robotic welding applications using systems such as FANUC, Yaskawa, ABB, or KUKA robots.
  • Create and modify robot programs, weld schedules, and motion paths to achieve optimal weld quality, cycle time, and process consistency.
  • Lead commissioning and startup activities for new robotic welding cells and automation equipment.
  • Evaluate and implement advanced robotic welding technologies, sensors, seam tracking, vision systems, and adaptive welding controls.

Welding Process Engineering

  • Develop and optimize welding processes including MIG (GMAW), TIG (GTAW), pulsed MIG, Laser welding, and Laser hybrid welding applications.
  • Establish welding parameters, process standards, and best practices to ensure compliance with customer and industry requirements.
  • Analyze weld defects and process variation using root cause analysis techniques and implement corrective actions.
  • Support weld qualification activities, procedure development, and validation testing.

Continuous Improvement & Manufacturing Support

  • Lead continuous improvement initiatives focused on weld quality, productivity, cycle time reduction, and equipment utilization.
  • Monitor key performance indicators (KPIs) and identify opportunities for process optimization.
  • Support production teams with technical troubleshooting and resolution of robotic, welding, fixture, and automation-related issues.
  • Drive standardization of robotic programming methods, maintenance practices, and operating procedures.

Equipment & Automation Integration

  • Collaborate with manufacturing, controls, and mechanical engineers on the design and integration of robotic welding cells.
  • Specify, evaluate, and implement tooling, fixtures, positioners, weld equipment, and automation systems.
  • Support PLC-controlled systems, HMI interfaces, safety systems, and industrial networking associated with robotic welding cells.
  • Coordinate equipment upgrades, retrofits, and capital projects.

Quality & Compliance

  • Ensure compliance with applicable welding standards, customer specifications, and internal quality requirements.
  • Develop inspection methods and quality control plans with QC department for robotic welding processes.
  • Support customer audits, quality investigations, and corrective action activities.

Required Qualifications

  • Bachelor's degree in mechanical engineering, manufacturing engineering, welding engineering, mechatronics engineering, or related technical discipline.
  • 3+ years of experience in robotic welding, welding automation
  • Strong knowledge of robotic programming platforms such as FANUC, Yaskawa , ABB, or KUKA.
  • Experience with MIG (GMAW), TIG (GTAW), Pulsed MIG, and automated welding processes.
  • Knowledge of PLC systems, industrial controls, sensors, and automation integration.
  • Ability to interpret engineering drawings, GD&T, welding symbols, and technical specifications.
  • Experience performing root cause analysis and implementing corrective actions.
  • Strong project management, communication, and problem-solving skills.

Preferred Qualifications

  • Welding Engineer certification or equivalent welding qualifications.
  • Experience with offline robotic simulation software (RoboGuide, MotoSim, RobotStudio, Process Simulate, etc.).
  • Knowledge of machine vision, seam tracking, laser scanning, and adaptive welding technologies.
  • Experience with automotive, heavy equipment, aerospace, or high-volume manufacturing environments.
  • Familiarity with Lean Manufacturing, Six Sigma, and continuous improvement methodologies.

Key Success Measures

  • Weld quality and first-pass yield.
  • Robotic cell uptime and overall equipment effectiveness (OEE).
  • Reduction in scrap, rework, and downtime.
  • Successful implementation of process improvements and automation projects.
  • Compliance with safety, quality, and production targets.

This position is ideal for an engineer who combines hands-on robotic welding expertise with a passion for automation, process optimization, and advanced manufacturing technologies.

This role subject to International Traffic in Arms Regulations (ITAR) requirements and as such, U.S. Citizen, Permanent Resident or U.S. Person Status Required.

Hendrick is an Equal Opportunity employer. Minorities, women, veterans, and individuals with disabilities are encouraged to apply. For more information regarding the EEOC, please visit https://www.eeoc.gov/sites/default/files/2023-06/22-088_EEOC_KnowYourRights6.12ScreenRdr.pdf.