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Finite Element Analysis Engineer Jobs in Indiana

... Design (CAD), Finite Element Analysis (FEA), Computational Fluid Dynamics (CFD) and Sound ... Managing engineering work and priorities of the project team to align with milestones and stretch ...

... Design (CAD), Finite Element Analysis (FEA), Computational Fluid Dynamics (CFD) and Sound ... Managing engineering work and priorities of the project team to align with milestones and stretch ...

$140 - $200/hr

Proficiency in structural finite element analysis software, including RAM Concept, SAP2000, and ... Structural Engineer (SE) licensure. * Experience with multidisciplinary coordination and QA/QC ...

Perform engineering calculations, finite element analysis (FEA), and 3D modeling. * Create and maintain bills of materials (BOMs) within the ERP system. * Apply knowledge of manufacturing processes ...

Perform engineering calculations, finite element analysis (FEA), and 3D modeling. * Create and maintain bills of materials (BOMs) within the ERP system. * Apply knowledge of manufacturing processes ...

Showing results 21-40

Finite Element Analysis Engineer information

See Indiana salary details

$24

$51

$72

How much do finite element analysis engineer jobs pay per hour?

As of Sep 7, 2026, the average hourly pay for finite element analysis engineer in Indiana is $51.03, according to ZipRecruiter salary data. Most workers in this role earn between $41.15 and $59.23 per hour, depending on experience, location, and employer.

What does a finite element analysis engineer do?

A Finite Element Analysis (FEA) Engineer uses computer-based simulation techniques to predict how products or structures behave under various conditions, such as stress, heat, vibration, or other physical effects. They create detailed digital models and use specialized software to identify potential weaknesses or areas for improvement in a design before physical prototypes are made. FEA Engineers play a crucial role in industries like automotive, aerospace, civil engineering, and manufacturing, helping to optimize designs for safety, durability, and efficiency. Their work reduces the need for costly physical testing and speeds up the overall product development process.

What are the key skills and qualifications needed to thrive as a finite element analysis engineer?

To thrive as a Finite Element Analysis Engineer, you need a solid background in mechanical or structural engineering, strong mathematical skills, and experience with FEA principles—typically supported by a relevant engineering degree. Proficiency with FEA software such as ANSYS, Abaqus, or NASTRAN, and familiarity with CAD tools and simulation certifications, are highly valued. Attention to detail, problem-solving ability, and effective communication are essential soft skills for interpreting results and collaborating with design teams. These skills and qualifications are crucial for delivering accurate simulations that inform design decisions, ensure safety, and optimize product performance.

What are some common challenges faced by finite element analysis engineers when working on multidisciplinary teams?

Finite Element Analysis (FEA) Engineers often collaborate with design, manufacturing, and testing teams, which can present communication challenges due to differing technical backgrounds and priorities. Translating complex simulation results into actionable design recommendations requires clear, concise communication and a solid understanding of the broader project goals. Additionally, FEA Engineers must balance simulation accuracy with project timelines, often needing to make judicious decisions about model complexity. Adapting quickly to evolving project requirements and integrating feedback from various stakeholders is key to success in this role.

What is the difference between Finite Element Analysis Engineer vs Mechanical Design Engineer?

AspectFinite Element Analysis EngineerMechanical Design Engineer
Required CredentialsBachelor's or Master's in Mechanical, Civil, or Aerospace Engineering; certifications in FEA softwareBachelor's or Master's in Mechanical Engineering; design software certifications
Work EnvironmentEngineering firms, manufacturing, aerospace, automotive industriesProduct development, manufacturing, automotive, consumer goods
Employer & Industry UsageUsed for structural analysis, stress testing, and simulationUsed for designing and developing mechanical components and systems

The main difference is that a Finite Element Analysis Engineer specializes in performing simulations and stress analysis using FEA software, focusing on validating designs. In contrast, a Mechanical Design Engineer primarily develops and creates mechanical components and systems, often using CAD tools. Both roles require engineering backgrounds, but their focus and daily tasks differ significantly.

What are popular job titles related to Finite Element Analysis Engineer jobs in Indiana?

For Finite Element Analysis Engineer jobs in Indiana, the most frequently searched job titles are:

What job categories do people searching Finite Element Analysis Engineer jobs in Indiana look for?

The top searched job categories for Finite Element Analysis Engineer jobs in Indiana are:

What cities in Indiana are hiring for Finite Element Analysis Engineer jobs?

Cities in Indiana with the most Finite Element Analysis Engineer job openings:

Infographic showing various Finite Element Analysis Engineer job openings in Indiana as of August 2026, with employment types broken down into 83% Full Time, 14% Part Time, and 3% Contract. Highlights an 81% Physical, 5% Hybrid, and 14% Remote job distribution, with an average salary of $106,149 per year, or $51 per hour.

Structural and Dynamic Systems Tech Advisors - Analytical #IN1279

Cummins

Columbus, IN

$135K - $146K/yr

Full-time

Posted 11 days ago


Cummins rating

8.2

Company rating: 8.2 out of 10

Based on 271 frontline employees who took The Breakroom Quiz

86th of 546 rated manufacturers


Job description

Utilize extensive knowledge of mechanical engineering principles to determine structural performance of components and systems in order to provide improvement recommendations. Determine the validity of the design to meet user requirements and provide design recommendation as needed. Obtain input and negotiate with Design, Thermal Sciences, Materials and Product Validation and deliver key structural performance parameters like motion, load, natural frequencies, stress, design margin, life, and sound power to Design and Product Validation. Make technical decisions in the area of structural design, such as materials and their processing as well as geometry, that impact structural performance of mechanical components and systems. Apply computer modeling processes including Matlab, Python, APDL ANSYS, FORTRAN, Excel, Windows/Linux operating systems and high performance computing hardware systems for complex technical problem solving and decision making. Utilize mechanical engineering tools and methods including ANSYS, FE-Safe, GT-Suite, modeFRONTIER and AVL Excite to provide guidance for processes that enable high quality decision making and predict the component's deformation, stresses, fatigue life and other factors. Apply Principles of Fatigue and Durability to determine life of mechanical components and systems via numerical modeling and physical measurements and evaluates component temperatures, natural frequencies, mode shapes, displacements, strains/stresses, wear and fatigue life to draw conclusions that influence design decisions. Utilize the Principles of Noise and Acoustics and the Principles of Dynamics and Vibration to evaluate both air and structure borne noise, sound power levels, sound quality, rigid and flexible body motion, velocities, accelerations, friction, and wear. Impact mechanical product design decisions to best meet stakeholder's requirements through the utilization and interpretation of numerical tools and methods that predict the performance of a mechanical component or system. Solve complex product problems using a process that protects the user, determines the assignable cause, implements data-based solutions, identifies systemic root causes, and recommends actions to prevent problem reoccurrence. Identify representation of a system or system element by using suitable analytical tools and techniques including Finite Element Analysis (FEA) Computational Fluid Dynamics (CFD), Design Optimization and Geometric Dimensioning and Tolerancing (GD&T) in order to derive knowledge about the real system. Define the strategy for modeling, simulation, and analysis of systems and system elements by considering specifics of a given situation or nature of the system of interest in order to derive insights for making quality decisions. Manage individual part life cycle including design, procurement, validation, production and retirement. Coach and mentor other engineers, project managers and cross-functional team members.

Cummins is an equal opportunity employer. Our policy is to provide equal employment opportunities to all qualified persons without regard to race, sex, color, disability, national origin, age, religion, union affiliation, sexual orientation, veteran status, citizenship, gender identity, or other status protected by law.

Start Date of Posting: 8/27/26
End Date of Posting:  9/14/26

Location: Columbus, IN

Position: ON SITE

*Annual USD Salary Minimum - Maximum 

$135,886 - $146,400

Positions require a Master's degree in Mechanical Engineering or related field and 3 years of experience as an Applied Mechanics, Mechanical or Systems Engineer or Technical Specialist, or related position. Alternatively, the employer will accept a Bachelor's Degree in Mechanical Engineering or related field and 6 years of experience as an Applied Mechanics, Mechanical or Systems Engineer or Technical Specialist, or related position. Experience to include: Computer modeling processes including Matlab, Python, APDL ANSYS, FORTRAN, Excel, Windows/Linux operating systems and high performance computing hardware systems; Mechanical engineering tools and methods including ANSYS, FE-Safe, GT-Suite, modeFRONTIER and AVL Excite; Principles of Fatigue and Durability; Principles of Noise and Acoustics; Principles of Dynamics and Vibration; Product problem solving; Finite Element Analysis (FEA), Computational Fluid Dynamics (CFD), Design Optimization and Geometric Dimensioning and Tolerancing (GD&T); Systems modeling and simulation; Part Life cycle management. 


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About Cummins

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Cummins Inc., headquartered in Columbus, IN, US, is a global power leader that designs, manufactures, and distributes numerous power products and systems. With its genesis from as early as 1919, the company readily serves diverse industries such as transportation, industrial, generator drive, or marine applications, among others. At the heart of Cummins' operations, its key product lineup encompasses diesel & natural gas engines, generator sets, engine components, and filtration, emission solutions, and electrical power generation systems. Cummins deeply embodies core values of integrity, respect for diversity, teamwork, performance excellence, and social responsibility - all of which dynamically fuel their mission 'Making people's lives better by powering a more prosperous world'.

Industry

Transportation equipment manufacturing

Company size

10,000+ Employees

Headquarters location

Columbus, IN, US

Year founded

1919