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Aviation Engineering Jobs in Michigan (NOW HIRING)

Acron Aviation designs, engineers, and manufactures certified avionics systems that support safety-critical flight operations across commercial and military aviation. Through our Aftermarket ...

Acron Aviation designs, engineers, and manufactures certified avionics systems that support safety-critical flight operations across commercial and military aviation. Through our Aftermarket ...

... engineering, to plan, design, prototype, document, and test avionics systems. The work supports commercial air transport, general aviation, and emerging platforms such as Urban Air Mobility (UAM) and ...

Job Title : Aviation Electronics, Electrical & Computer Systems Technician (AE/AT) Category / Component : Enlisted • Active Overview Aviation Electronics, Electrical and Computer Systems ...

Showing results 41-60

Aviation Engineering information

See Michigan salary details

$58.4K

$77.3K

$85K

How much do aviation engineering jobs pay per year?

As of Aug 23, 2026, the average yearly pay for aviation engineering in Michigan is $77,329.00, according to ZipRecruiter salary data. Most workers in this role earn between $75,000.00 and $81,500.00 per year, depending on experience, location, and employer.

What is aviation engineering?

Aviation engineering is a specialized branch of engineering focused on the design, development, testing, and maintenance of aircraft and their systems. Professionals in this field work on everything from airplanes and helicopters to drones and spacecraft. They ensure that these vehicles are safe, efficient, and meet regulatory standards. Aviation engineers may specialize in areas such as aerodynamics, avionics, propulsion, or structural design. The field requires a strong foundation in physics, mathematics, and engineering principles.

What are the key skills and qualifications needed to thrive as an aviation engineer?

To thrive as an Aviation Engineer, you need a solid background in aeronautical engineering principles, mathematics, and physics, usually supported by a relevant engineering degree and often a Professional Engineer (PE) license. Familiarity with CAD software, simulation tools like MATLAB, and compliance with aviation regulations such as FAA or EASA standards is essential. Strong problem-solving, teamwork, and communication skills help aviation engineers collaborate effectively and address complex technical challenges. These competencies are crucial for ensuring the safety, reliability, and innovation of aircraft systems in a highly regulated industry.

How do aviation engineers typically collaborate with other departments during the aircraft design process?

Aviation engineers work closely with multidisciplinary teams, including manufacturing, quality assurance, and regulatory compliance departments, throughout the aircraft design process. Collaboration often involves regular meetings, design reviews, and joint problem-solving sessions to ensure that all technical and safety requirements are met. Effective communication and teamwork are essential, as engineers must integrate feedback from various specialists to develop safe, efficient, and innovative aircraft designs. This collaborative environment not only enhances project outcomes but also provides valuable learning opportunities for career growth.

What is the difference between Aviation Engineering vs Aircraft Maintenance Engineering?

AspectAviation EngineeringAircraft Maintenance Engineering
CredentialsEngineering degree, certifications in aeronautical or aerospace engineeringDiploma or certification in aircraft maintenance engineering
Work EnvironmentDesign labs, research facilities, manufacturing plantsAircraft hangars, maintenance workshops, airports
Employer & IndustryAircraft manufacturers, aerospace companies, research organizationsAirlines, maintenance service providers, airports

While both roles involve aircraft, Aviation Engineering focuses on designing, developing, and testing aircraft and aerospace systems, whereas Aircraft Maintenance Engineering centers on inspecting, repairing, and maintaining aircraft to ensure safety and compliance. Both careers require technical certifications and are vital to the aviation industry, but they differ in daily tasks and work environments.

Are aviation engineers in demand?

Aviation engineering is a specialized field with steady demand due to ongoing advancements in aircraft technology and maintenance needs. Employment opportunities are often available in aerospace companies, government agencies, and maintenance organizations, especially for those with strong technical skills and relevant certifications.

What can you do with an aviation engineering degree?

An aviation engineering degree prepares individuals for roles such as aircraft design, maintenance, and systems analysis. Graduates can work in aerospace companies, airlines, or government agencies, often requiring knowledge of aerodynamics, materials, and engineering software. Certification and hands-on experience are valuable for career advancement in this field.

What does an aviation engineer do?

An aviation engineer designs, develops, tests, and maintains aircraft and aerospace systems. They work with aerodynamics, propulsion, materials, and avionics, often using CAD software and adhering to safety standards. Their role ensures aircraft operate efficiently, safely, and meet regulatory requirements.

What are popular job titles related to Aviation Engineering jobs in Michigan?

For Aviation Engineering jobs in Michigan, the most frequently searched job titles are:

What cities in Michigan are hiring for Aviation Engineering jobs?

Cities in Michigan with the most Aviation Engineering job openings:

Infographic showing various Aviation Engineering job openings in Michigan as of August 2026, with employment types broken down into 86% Full Time, 7% Part Time, 2% Temporary, 3% Contract, and 2% Nights. Highlights an 85% Physical, 5% Hybrid, and 10% Remote job distribution, with an average salary of $77,329 per year, or $37.2 per hour.

Operations Electrical Engineer (Electronics)

Acron Aviation

Grand Rapids, MI • On-site

Full-time

Re-posted 25 days ago


Job description

Position Summary
At Acron, our ambition is to relentlessly reimagine and reshape the value chains through which we deliver results to our customers, suppliers, and stakeholder communities-all in pursuit of innovations that create safer skies. Across the Avionics Business Unit, our employees strive to achieve world‑class results by putting customers first, displaying ownership of outcomes, moving fast, and speaking candidly. To support this ambition, we are seeking an Operations Engineer – Displays as part of the Acron Avionics Business Unit, based on-site in Grand Rapids, MI.

This role is focused on driving Zero Defects in the middle of the manufacturing process, where design intent meets production reality. The Operations Engineer owns Rolled Throughput Yield (RTY) performance for the Displays product line and uses RTY and defect data to frame, prioritize, and lead continuous improvement initiatives. These efforts are aimed at eliminating systemic defect drivers, stabilizing manufacturing and test processes, and structurally removing cost from both product and process, rather than relying on inspection, rework, or short‑term containment.

This position requires practical experience in Circuit Card Assembly (CCA) design to diagnose manufacturing defects arising from marginal design decisions, component selection, layout sensitivities, or testability limitations. Operating in a complex, regulated avionics manufacturing environment, the role partners closely with Manufacturing, Test, and Operations, and works in tight collaboration with Quality, who owns first‑mile and last‑mile quality including supplier and customer‑facing issues. The Operations Engineer leads defect resolution within the factory, ensures corrective actions are permanent and prevention‑based, and applies design‑informed manufacturing insight to strengthen process robustness and execution.
Rolled Throughput Yield Ownership & Analytics
  • Own Rolled Throughput Yield (RTY) for the Displays product line, including analysis by process step, failure mechanism, and product variant
  • Identify leading indicators of RTY degradation (repeat defects, rework loops, test fallout) and act before yield loss escalates
  • Develop RTY loss trees and defect pareto to focus improvement activity on the highest‑impact opportunities
Defect Resolution
  • Lead structured defect resolution for manufacturing, integration, calibration, and test‑induced failures
  • Drive cross‑functional root cause analysis and corrective actions relating to factory failures in collaboration with Manufacturing, Manufacturing/Test/Design Engineering, Operations, and Quality
  • Partner with Quality Engineering to provide deep manufacturing and CCA‑specific technical insight to Quality‑led investigations
  • Collaborate with Manufacturing Engineering and Test Engineering to address CCA‑related defect drivers through improved process controls, screening strategies, test conditions, or work instructions
  • Apply CCA‑level design knowledge (schematics, layouts, component behavior, and manufacturing interfaces) to identify defect root causes related to soldering, component sensitivity, layout robustness, thermal effects, and test access
Continuous Improvement & Cost Takeout
  • Use RTY and defect data to frame continuous improvement projects that eliminate waste, rework, and non‑value‑added process steps
Required Qualifications
  • Bachelor’s degree in Engineering (Manufacturing, Electrical/Computer, Mechanical, Systems, or related). Electrical/Computer Engineering preferred.
  • 3+ years of experience in manufacturing, operations engineering, production engineering, or sustaining engineering
  • Demonstrated experience improving yield (RTY/FPY) and resolving systemic defects in a complex manufacturing environment
  • Hands‑on experience with Circuit Card Assembly (CCA) at the design‑manufacturing interface, such as Design for Manufacturing (DFM) support, electronics troubleshooting, sustaining engineering, or manufacturing support
  • Ability to interpret schematics, layouts, and component behavior to assess impact on manufacturability, testability, and RTY
  • Strong structured problem‑solving capability (i.e. A3, 5‑Why, Fishbone, PDCA)
  • Experience partnering with Quality, Manufacturing, and Test in a regulated environment (Aerospace, Defense, Medical, Automotive, or similar)
Preferred Qualifications
  • Experience with avionics, displays, electronics, or electro‑mechanical assemblies
  • Prior involvement with high‑reliability CCA manufacturing (IPC Class 3, AS9100 environments)
  • Familiarity with common CCA defect mechanisms (solder joint reliability, thermal stress, component derating, layout‑induced sensitivity, test‑induced failures)
  • Exposure to Lean Manufacturing, Continuous Improvement, or formal operating systems
Equal Opportunity Statement
Acron Aviation is proud to be an Affirmative Action and Equal Opportunity Employer. We are committed to treating all employees and applicants with respect and dignity and to maintaining a workplace free from unlawful discrimination. All applicants will be considered for employment regardless of race, color, religion, age, national origin, ancestry, ethnicity, gender (including pregnancy, childbirth, breastfeeding, or other related medical conditions), gender identity, gender expression, sexual orientation, marital status, veteran status, disability, genetic information, citizenship status, or any other legally protected characteristic.
 
Additional Information:
Acron Aviation maintains a drug-free workplace and conducts pre-employment substance abuse testing and background checks, where allowed by law. Acron Aviation is an E-Verify employer.

We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.