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Mechatronics Jobs in Lexington, SC (NOW HIRING)

As a Mechatronics & Robotics Apprentice (MRA), you will learn to combine electronic, mechanical, computer and automation engineering skills at the workplace. During on-the-job learning (OJL) you will ...

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Mechatronics information

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How much do mechatronics jobs pay per hour?

As of Sep 5, 2026, the average hourly pay for mechatronics in Lexington, SC is $23.69, according to ZipRecruiter salary data. Most workers in this role earn between $20.58 and $25.91 per hour, depending on experience, location, and employer.

What is mechatronics?

Mechatronics is a specific engineering discipline that combines aspects of mechanical and electrical engineering, as well as other sub-disciplines, such as robotics, automation, and manufacturing. The general purpose of mechatronics is to address the growing complexity in electronics and mechanical technology by developing a set of methods and design solutions that can account for that complexity. Mechatronics has many branches within it and influences multiple fields of study and practical application, such as car manufacturing, sensing and control systems, complex electronics, and robotic production.

What is mechatronics?

Mechatronics is an interdisciplinary field that combines mechanical engineering, electrical engineering, computer science, and control engineering to design and create smart systems and products. Mechatronics engineers work on developing automated machines, robotics, and intelligent systems found in industries such as manufacturing, automotive, and healthcare. The goal is to integrate hardware and software to improve the efficiency, performance, and functionality of modern devices.

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

To thrive as a Mechatronics Engineer, you need a strong background in mechanical, electrical, and computer engineering, typically supported by a bachelor's degree in mechatronics or a related field. Familiarity with CAD software, PLC programming, robotics platforms, and automation systems is commonly required, along with certifications like Certified Mechatronics Engineer (SME). Strong problem-solving abilities, teamwork, and effective communication skills help you collaborate across engineering disciplines and adapt to complex projects. These competencies are crucial for designing, integrating, and maintaining advanced automated systems in diverse industries.

How do mechatronics engineers typically collaborate with other specialists on multidisciplinary projects?

Mechatronics engineers regularly work alongside mechanical, electrical, and software engineers, as well as project managers and technicians, to develop integrated systems. Effective communication and teamwork are crucial since each specialist brings unique expertise to the table. You can expect frequent meetings to coordinate design changes, troubleshoot issues, and ensure seamless integration between hardware and software. This collaborative environment often leads to innovative solutions but can also require strong organizational and interpersonal skills to manage diverse perspectives and project deadlines.

What is the difference between Mechatronics vs Electrical Engineer?

AspectMechatronicsElectrical Engineer
Required CredentialsBachelor's in Mechatronics, Robotics, or related fieldsBachelor's in Electrical Engineering or similar
Work EnvironmentManufacturing, automation, robotics labsPower systems, electronics design, electrical infrastructure
Industry UsageAutomation, robotics, product designPower, telecommunications, electronics

Mechatronics and Electrical Engineers often collaborate but focus on different areas. Mechatronics integrates mechanical, electrical, and software systems for automation and robotics, while Electrical Engineers primarily work on electrical systems and circuitry. Both roles require similar credentials and are used across manufacturing, technology, and engineering industries. Understanding these differences helps in choosing the right career path or job focus.

Is mechatronics a good career path?

Mechatronics is a multidisciplinary field combining mechanical, electrical, and computer engineering, with job roles involving automation, robotics, and control systems. It offers strong employment prospects due to increasing automation across industries and typically requires skills in programming, circuit design, and system integration. Certifications and hands-on experience can enhance job opportunities in this growing field.

What jobs can mechatronics engineers do?

Mechatronics engineers can work in roles such as automation engineer, robotics engineer, control systems engineer, and manufacturing systems designer. They design, develop, and maintain integrated mechanical, electronic, and software systems, often using tools like CAD and PLCs, in industries such as manufacturing, robotics, automotive, and aerospace.

What are popular job titles related to Mechatronics jobs in Lexington, SC?

For Mechatronics jobs in Lexington, SC, the most frequently searched job titles are:

What job categories do people searching Mechatronics jobs in Lexington, SC look for?

The top searched job categories for Mechatronics jobs in Lexington, SC are:

What cities near Lexington, SC are hiring for Mechatronics jobs?

Cities near Lexington, SC with the most Mechatronics job openings:

Infographic showing various Mechatronics job openings in Lexington, SC as of August 2026, with employment types broken down into 70% Full Time, 20% Temporary, and 10% Contract. Highlights an 100% In-person job distribution, with an average salary of $49,283 per year, or $23.7 per hour.

Manufacturing Engineer

Pure Power Technologies Inc

Blythewood, SC • On-site

$85 - $110/hr

Other

Posted 21 days ago


Job description

This position is responsible for developing, improving, and sustaining manufacturing processes that deliver safe, reliable, high-quality products while meeting production, cost, quality, and delivery objectives.

The Manufacturing Engineer will work closely with Operations, Quality, Maintenance, Product Engineering, and Supply Chain to troubleshoot manufacturing issues, improve equipment and process capability, reduce scrap and downtime, and support continuous improvement initiatives.

The ideal candidate has experience in an automotive, diesel, fuel systems, precision machining, or other high-volume manufacturing environment and is comfortable working directly on the production floor to solve complex process and equipment problems.

Key Responsibilities
  • Develop, implement, optimize, and maintain manufacturing processes for fuel injectors and precision fuel-system components.
  • Provide hands‑on engineering support to production operations, including troubleshooting equipment, tooling, assembly, machining, and process‑related issues.
  • Analyze manufacturing performance and identify opportunities to improve quality, cycle time, throughput, OEE, scrap, downtime, and overall cost.
  • Lead structured problem‑solving and root‑cause analysis using tools such as 5 Why, Fishbone, 8D, DMAIC, and other corrective‑action methodologies.
  • Develop and maintain manufacturing documentation including process flow diagrams, work instructions, standard work, PFMEAs, control plans, process specifications, and engineering change documentation.
  • Support APQP, PPAP, FMEA, MSA, SPC, and capability studies as required.
  • Establish and optimize process parameters to ensure consistent product quality and manufacturing capability.
  • Work with Quality Engineering to investigate internal and customer quality concerns and implement permanent corrective actions.
  • Support the design, specification, installation, qualification, and launch of new equipment, tooling, fixtures, gauges, and manufacturing processes.
  • Participate in equipment commissioning, process validation, run‑at‑rate activities, and production launches.
  • Support manufacturing processes involving precision machining, assembly, automated equipment, leak/flow testing, inspection, and functional testing, as applicable.
  • Identify and implement opportunities for automation, error‑proofing/poka‑yoke, and process controls.
  • Use production data and statistical methods to identify trends and improve process capability.
  • Partner with Maintenance and Controls Engineering to improve equipment reliability and reduce unplanned downtime.
  • Support Lean Manufacturing and Continuous Improvement initiatives, including waste reduction, standardized work, 5S, Kaizen, and value‑stream improvement.
  • Evaluate manufacturing processes for safety, ergonomics, efficiency, quality, and cost.
  • Support capital‑equipment projects from concept and justification through implementation.
  • Work with suppliers and equipment manufacturers to resolve tooling, equipment, and process issues.
  • Train operators, technicians, and other manufacturing personnel on new or revised processes.
  • Ensure manufacturing processes comply with company safety, quality, environmental, and applicable automotive‑industry requirements.
  • Perform other engineering responsibilities as required to support plant operations and business objectives.
Qualifications

Required:

  • Bachelor's degree in Manufacturing Engineering, Mechanical Engineering, Industrial Engineering, Mechatronics, or a related engineering discipline.
  • 8+ years of manufacturing engineering or closely related experience in a production environment.
  • Hands‑on experience supporting manufacturing equipment and production processes.
  • Strong knowledge of root‑cause analysis, process improvement, troubleshooting, and corrective action.
  • Experience working with manufacturing documentation such as PFMEAs, control plans, work instructions, process flows, and standard work.
  • Ability to analyze manufacturing data and make data‑driven process decisions.
  • Strong communication and cross‑functional problem‑solving skills.
  • Ability and willingness to spend significant time on the manufacturing floor.

Preferred:

  • Experience within automotive, diesel, fuel systems, powertrain, Tier 1 automotive, or other high‑volume precision manufacturing.
  • Experience manufacturing fuel injectors, fuel‑system components, pumps, valves, precision mechanical components, or similar products.
  • Experience with CNC machining, grinding, honing, lapping, precision assembly, automated assembly, or test equipment.
  • Knowledge of IATF 16949 and automotive quality requirements.
  • Experience with APQP, PPAP, PFMEA, MSA, SPC, GD&T, and process capability analysis.
  • Experience with Lean Manufacturing, Six Sigma, or Continuous Improvement methodologies.
  • Experience with automation, robotics, PLC‑controlled equipment, vision systems, or error‑proofing technologies.
  • Experience supporting new‑product introduction and manufacturing‑equipment launches.

Stanadyne is an equal opportunity employer and does not discriminate on the basis of race, religion, national origin, sex, gender, color, marital status, sexual orientation, disability, veteran status or any other protected class.

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