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Automation Engineer Jobs in Franklin, WI (NOW HIRING)

This Automation Engineer will focus on automation implementation for injection molding, owning the troubleshooting of secondary ops and establishing/executing assembly processes and equipment. JOB ...

The Building Automation Engineer supports the development and implementation of building automation systems by assisting with programming, system integration, and commissioning activities. This role ...

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Automation Engineer information

See Franklin, WI salary details

$34.3K

$99.4K

$151.3K

How much do automation engineer jobs pay per year?

As of Sep 4, 2026, the average yearly pay for automation engineer in Franklin, WI is $99,448.00, according to ZipRecruiter salary data. Most workers in this role earn between $80,300.00 and $114,600.00 per year, depending on experience, location, and employer.

What is an automation engineer?

Automation Engineers are professionals who design, develop, and implement automated systems and processes to improve efficiency, quality, and productivity in various industries. They work with technologies such as robotics, control systems, and software to automate repetitive or complex tasks. Their responsibilities often include programming, troubleshooting, and maintaining automation equipment, as well as collaborating with other engineers to optimize workflows. Automation Engineers are employed in sectors like manufacturing, IT, automotive, and pharmaceuticals.

What does an automation engineer do?

As an automation engineer, your job is to design and develop automated machines for your company. Your responsibilities may include determining the best way to implement automation, creating devices that meet the company's needs and specifications, testing robots to ensure they perform as designed, and monitoring existing automation to check if repair or replacement is needed. Many duties of this job vary by industry. For example, automation engineers work in areas like the automotive industry, food preparation and packaging, electronics production, and appliance production, and each of these fields has different materials and objectives. However, regardless of industry, most automation engineers work with both hardware and software.

What are some common challenges automation engineers face when integrating new systems into existing workflows?

Automation Engineers often encounter challenges when integrating new automation solutions with legacy systems, including compatibility issues and data migration complexities. Coordinating with cross-functional teams—such as IT, operations, and production—can require extensive communication to ensure seamless implementation. Additionally, balancing the need for system reliability with innovation and minimizing downtime during transitions are key concerns. Proactively addressing these challenges through thorough planning and testing helps ensure successful integration.

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

To thrive as an Automation Engineer, you need a strong grasp of control systems, programming (such as PLC, Python, or C++), and a relevant engineering degree. Familiarity with automation platforms like Rockwell, Siemens, or SCADA systems, as well as certifications like ISA or relevant vendor-specific credentials, is highly valued. Analytical thinking, problem-solving, and effective communication are essential soft skills for collaborating with diverse teams and troubleshooting complex issues. These skills and qualifications are critical for designing efficient automated solutions, minimizing downtime, and ensuring seamless integration of systems.

What is the difference between Automation Engineer vs Control Systems Engineer?

AspectAutomation EngineerControl Systems Engineer
Required CredentialsBachelor's in Engineering, certifications like PLC or SCADABachelor's in Electrical, Mechanical, or Systems Engineering, similar certifications
Work EnvironmentManufacturing, industrial plants, automation companiesIndustrial facilities, manufacturing, process control environments
Employer & Industry UsageTech firms, manufacturing, automation service providersIndustrial sectors, process industries, automation firms
Common Search & Comparison IntentYesYes

The main difference between Automation Engineers and Control Systems Engineers lies in their focus areas. Automation Engineers typically design and implement automated systems across various industries, emphasizing software and hardware integration. Control Systems Engineers concentrate on designing and maintaining control systems for industrial processes, often with a stronger emphasis on control theory and hardware. Both roles require similar qualifications and are often found working in manufacturing and industrial environments, but their specific responsibilities and focus areas differ.

What are the most commonly searched types of Automation Engineer jobs in Franklin, WI?

The most popular types of Automation Engineer jobs in Franklin, WI are:

What cities near Franklin, WI are hiring for Automation Engineer jobs?

Cities near Franklin, WI with the most Automation Engineer job openings:

Infographic showing various Automation Engineer job openings in Franklin, WI as of August 2026, with employment types broken down into 85% Full Time, 12% Part Time, and 3% Contract. Highlights an 85% Physical, 5% Hybrid, and 10% Remote job distribution, with an average salary of $99,448 per year, or $47.8 per hour.

Full-time

Re-posted 7 days ago


Techniplas rating

5.9

Company rating: 5.9 out of 10

Based on 9 frontline employees who took The Breakroom Quiz

69th of 85 rated plastic manufacturers


Job description

NEXXTA is a U.S.-based manufacturing partner with four Great Lakes facilities delivering precision, speed, and scale. We serve industry leaders across transportation, energy, medical, and defense, offering tariff-free production, open capacity, and rapid ramp-up. With in-house R&D and engineering, we help customers strengthen supply chains and build confidently in America.
SUMMARY OF POSITION:
This Automation Engineer will focus on automation implementation for injection molding, owning the troubleshooting of secondary ops and establishing/executing assembly processes and equipment.
JOB DUTIES & ESSENTIAL FUNCTIONS:
  • Implement automation objectives on the molding floor (cobots, pickers, conveyance, etc.) to reduce costs and increase operational efficiencies.
  • Provide a lead role in the development, installation, and programming of robotic work cells from concept to postproduction turn-over.
  • Own troubleshooting of secondary ops (pad printing, laser engraving, sonic welding, etc.).
  • Consult at the estimating phase for assembly opportunities & automation opportunities as directed and then implement the quoted process in manufacturing upon release.
  • Effectively communicate solutions to end-users as appropriate. Provide a highly visible customer focus.
  • Lead development of in-house robotic integration projects for new or continuous improvement projects.
  • Present and modify concepts for team understanding and approval.
  • Work with outside vendors to determine necessary parts and estimated budgets for projects.
  • Maintain and provide appropriate documentation regarding drawings, bills of material, budget tracking, safety, and program changes.
  • Understand and implement the integration of safety circuits, machine interfaces (SPI Interface, etc.), and peripheral controls and devices.
  • Work as a liaison with outside integrators and vendors as needed for special projects or programs.
  • Train and mentor production technicians and maintenance personnel regarding troubleshooting issues and documentation.
  • Assist with inspections, projects, or modifications at other facilities as needed.
  • This list of duties and responsibilities is not all inclusive and may be expanded to include other duties and responsibilities, as management may deem necessary from time to time.

QUALIFICATIONS (KNOWLEDGE, SKILLS & ABILITIES):
  • BS/BA degree in a related Engineering or technical field, or equivalent experience.
  • Proficient knowledge in the following key areas: Hardware Architecture (performance testing, monitoring, operations), Hardware Benchmarking (program management, network management), Design (compliance, security), Network Engineering (planning, provision).
  • Knowledge of infrastructure technology and basic programming languages or database management systems (e.g., Java, PERL, Python).
  • Self-starter who can work with minimum or little supervision.
  • Proficient in Microsoft Office software (Word, Excel, PowerPoint, Project, etc.).
  • Requires strong electrical and mechanical skills with the ability to think logically and analytically.
  • Ability to think creatively to deliver solutions through continuous improvement.
  • Above-average communication and listening skills required.
  • Exceptional written and oral communication skills.
  • Strong organizational skills.
  • Highly self-motivated and directed.
  • Exceptional customer service orientation.
  • Demonstrated commitment to continuous learning and self-development.
  • Programming of Robots - Capable of high-level robotic programming for Motoman robots. Models being used are the Motoman XRC, NX100, and DX100 controllers.
  • Programmable Logic Controllers (PLC) - Understand and perform ladder logic programming for Allen-Bradley PLCs.
  • Human Machine Interfaces (HMI) - Understand operation and basic programming of HMI terminals.
  • Vision Systems - Understand and program various vision systems for part inspection and verification. Systems presently being used are Keyence, Cognex, and Dalsa.
  • Safety Controller / PLC - Have a strong understanding of robotic cell safety controllers, safety PLCs, or safety interlocks.
  • Ability to use AutoCAD / AutoCAD LT for development of electrical prints, end-of-arm tool designs, and cell layouts.
  • Ability to use 3D CAD (Solid Edge) to develop end-of-arm tools, fixtures, and tooling.
  • Understand, follow, and implement current robotic industry safety standards and guidelines in the development of robotic work cells.
  • The ability to identify and correct safety issues with current or future robotic work cells.

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