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Ansys Jobs in Virginia (NOW HIRING)

Civil Engineer

Mineral, VA · On-site

$44 - $45/hr

Prepare and review engineering calculations and documentation using software tools (Mathcad, GTSTRUDL, STADD, ANSYS, Excel, Matlab). * Identify design risks, propose improvements, and support field ...

Senior Welding Engineer

Staunton, VA · On-site

$35 - $48.25/hr

Practical ANSYS experience manipulating, modeling, and analyzing complex 3-D assemblies * Experience with optimization and DOE methods Your Benefits: Daikin Applied offers the following benefits for ...

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Ansys information

See Virginia salary details

$15

$23

$31

How much do ansys jobs pay per hour?

As of Aug 20, 2026, the average hourly pay for ansys in Virginia is $23.22, according to ZipRecruiter salary data. Most workers in this role earn between $20.00 and $25.48 per hour, depending on experience, location, and employer.

What is Ansys?

Ansys is a widely used engineering simulation software designed to analyze and solve complex engineering problems related to structural mechanics, fluid dynamics, thermal analysis, and electromagnetics. Ansys engineers use this software to model, simulate, and optimize the performance of products and systems in a virtual environment before physical prototypes are made. Their work helps companies reduce development costs, improve product reliability, and accelerate time to market. They often collaborate with design and manufacturing teams to interpret simulation results and recommend design improvements.

What types of projects do engineers typically work on when using Ansys software?

Engineers who use Ansys software are often involved in simulation-driven projects such as finite element analysis (FEA), computational fluid dynamics (CFD), and electromagnetic field simulations. These projects can range from optimizing the structural integrity of automotive components to improving thermal management in electronics or simulating fluid flow in aerospace designs. Collaboration with cross-functional teams—including design, manufacturing, and testing—is common to ensure simulation results align with real-world performance. The work often involves iterating on models, validating results, and communicating findings to stakeholders, making strong communication and analytical skills essential.

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

To thrive as an Ansys Engineer, you need a solid understanding of engineering principles, proficiency in finite element analysis (FEA), and typically a degree in mechanical, aerospace, or related engineering fields. Mastery of Ansys simulation software, relevant CAD tools, and possibly certifications like Ansys Certified Expert are commonly required. Strong analytical thinking, problem-solving abilities, and effective communication help professionals interpret simulation results and collaborate with multidisciplinary teams. These skills ensure accurate simulations, efficient design processes, and successful project outcomes in industries where precision and innovation are critical.

What is the difference between Ansys vs Mechanical Engineer?

AspectAnsysMechanical Engineer
Required CredentialsEngineering degree, certifications in simulation softwareEngineering degree, often with specialization in mechanical systems
Work EnvironmentDesign and simulation software, engineering labs, R&DManufacturing plants, design offices, R&D departments
Industry UsageProduct design, aerospace, automotive, energyProduct development, manufacturing, systems design
Common Search/ComparisonSimulation tools, engineering softwareMechanical design, engineering roles

While Ansys focuses on simulation and analysis software used by engineers, Mechanical Engineers are professionals who design, analyze, and develop mechanical systems. Ansys is a tool often used by Mechanical Engineers to perform simulations, making their roles interconnected but distinct. Understanding the differences helps in choosing the right career path or software expertise.

Does Ansys offer remote work options?

Ansys offers remote work options for certain roles, especially those in software development, engineering, and support functions. Availability of remote work depends on the specific position, team needs, and company policies, which may include flexible schedules and virtual collaboration tools.

How much does Ansys pay?

Salaries for Ansys employees vary based on role, experience, and location. Entry-level positions typically start around $60,000 annually, while experienced engineers and specialists can earn over $100,000 per year. Compensation may also include bonuses, stock options, and benefits depending on the position and company policies.

What are the most commonly searched types of Ansys jobs in Virginia?

The most popular types of Ansys jobs in Virginia are:

Infographic showing various Ansys job openings in Virginia as of August 2026, with employment types broken down into 7% Internship, 86% Full Time, and 7% Contract. Highlights an 100% In-person job distribution, with an average salary of $48,299 per year, or $23.2 per hour.

Electromechanical engineer

TiltEdge Solutions LLC

Reston, VA • On-site

Contractor

Re-posted 22 days ago


Job description

Position: Electromechanical engineer
Work Location: Reston VA
Payrate: $55.00/hr
 
Job Description:
  • Design 300 mm wafer chucks including vacuum chucks, edge‑grip mechanisms, compliant fingers, and kinematic supports.
  • Perform stress, deformation, and warp accommodation modeling to ensure ultra‑low wafer stress during handling.
  • Develop motion mechanisms for raise/lower (Z‑axis) and edge‑grip actuation that prevent wafer damage and meet precision requirements.
  • Ensure all designs meet ISO Class 1 cleanroom particle generation specifications and support high‑volume, 24/7 fab operation.
  • Select appropriate low‑outgassing, non‑particulating materials (e.g., PEEK, Vespel, Alumina, DLC, etc.) and coatings suitable for semiconductor tools.
  • Work with controls engineers on soft‑landing, jerk‑limited motion profiles, and closed‑loop sensing for wafer presence, alignment, and force control.
  • Conduct FEA simulations for thin‑wafer stress, contact mechanics, modal behavior, and static/dynamic loads.
  • Perform particle testing, vacuum leak testing, wafer stress validation, and endurance testing.
  • Generate engineering documentation: DFMEA, test plans, tolerance stackups, and SEMI/ISO compliance documents.
  • Collaborate with cross‑functional teams (systems, electronics, materials, manufacturing) for prototype builds and tool integration.
Skill:
Technical Skills
  • 300 mm wafer handling design (edge‑grip, vacuum, kinematic support)
  • Precision chuck design & compliant mechanisms
  • FEA (ANSYS, Abaqus, COMSOL) - stress, modal, and contact analysis
  • Modeling warped/bowed wafers, thin‑plate mechanics
  • Cleanroom design principles - ISO Class 1, low‑particle mechanisms
  • Vacuum system design, leak‑tight sealing, He‑leak testing
Material selection for semiconductor tools:
  • PEEK, Vespel, PTFE, PPS
  • Alumina, Aluminum Nitride, Ti‑6Al‑4V
  • Hard anodize, DLC, TiN, Parylene coatings
Motion system design:
  • Linear motors, voice‑coil actuators, pneumatic micro‑actuators
  • Flexures, guides, cross‑roller bearings
  • Jerk‑limited (S‑curve) motion and soft‑landing control
  • Edge‑grip mechanism design with low clamping forces
  • Tolerance analysis, GD&T, DFMEA, DOE
  • Semiconductor standards familiarity: SEMI M1, M49, E57, E84, ISO 14644
Metrology & Testing Skills
  • Warp, bow, TTV measurement techniques
  • Particle measurement and contamination control
  • Vacuum integrity tests (helium mass spectrometer, pressure decay)
  • Wafer alignment and edge detection sensors (optical/capacitive)
  • Reliability testing for 24/7 fab duty
Software Skills
  • CAD: SolidWorks, Creo, NX
  • Simulation tools: ANSYS/Abaqus/COMSOL
  • Data tools: MATLAB, Python
  • Motion/controls: Beckhoff TwinCAT, Siemens/Omron PLCs
Soft Skills
  • Strong cross‑functional collaboration
  • Root cause analysis (8D, 5‑Whys, Ishikawa)
  • Clear documentation & communication
  • Ownership and design‑for‑reliability mindset