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Simulation Engineer Siemens Plant Simulation Jobs in Raleigh, NC

... Siemens plant in Wendell, NC. You'll make an impact by: * Ensure compliance with health, safety ... Bachelor's degree in Engineering, Logistics, Supply Chain Management, or a related discipline ...

Plant Manager

Knightdale, NC · On-site

$145K - $248K/yr

Here at Siemens, we take pride in enabling sustainable progress through technology. We do this ... Bachelor's degree or advanced degree in Engineering, Operations Management, Business, or a related ...

Plant Manager

Knightdale, NC · On-site

$145 - $249/hr

... Siemens, we take pride in enabling sustainable progress through technology. We do this through ... Bachelor's degree or advanced degree in Engineering, Operations Management, Business, or a related ...

Warehouse Manager

Wendell, NC · On-site

$91 - $157/hr

... Siemens plant in Wendell, NC. You'll make an impact by: * Ensure compliance with health, safety ... Bachelor's degree in Engineering, Logistics, Supply Chain Management, or a related discipline ...

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Simulation Engineer Siemens Plant Simulation information

See Raleigh, NC salary details

$37.9K

$120K

$185.2K

How much do simulation engineer siemens plant simulation jobs pay per year?

As of Aug 22, 2026, the average yearly pay for simulation engineer siemens plant simulation in Raleigh, NC is $119,954.00, according to ZipRecruiter salary data. Most workers in this role earn between $89,400.00 and $142,400.00 per year, depending on experience, location, and employer.

What is a simulation engineer Siemens Plant Simulation?

A Simulation Engineer specializing in Siemens Plant Simulation uses specialized software to model, analyze, and optimize manufacturing processes and production systems. Their main role is to create digital twins of real-world facilities, allowing companies to test changes, improve efficiency, and minimize costs without interrupting actual operations. These engineers collaborate closely with production, logistics, and IT teams to ensure that the simulations accurately reflect real-world scenarios and help identify bottlenecks or areas for improvement. Siemens Plant Simulation is widely used in industries such as automotive, logistics, and manufacturing for process optimization and strategic planning.

What are some common challenges simulation engineers face when implementing Siemens Plant Simulation in a manufacturing environment?

Simulation Engineers using Siemens Plant Simulation often encounter challenges such as accurately modeling complex manufacturing processes, integrating data from various sources, and ensuring that simulations reflect real-world variability. Collaborating closely with production, IT, and process engineering teams is crucial to gather accurate input data and validate simulation results. Additionally, balancing the level of model detail with computational efficiency is a frequent consideration, as is communicating simulation outcomes effectively to non-technical stakeholders.

What are the key skills and qualifications needed to thrive as a simulation engineer specializing in Siemens Plant Simulation?

To thrive as a Simulation Engineer with Siemens Plant Simulation, you need a strong background in industrial engineering, process optimization, and discrete event simulation, often supported by a relevant engineering degree. Expertise in Siemens Plant Simulation software, programming skills (such as SimTalk or Python), and familiarity with data analysis tools are typically required. Strong problem-solving abilities, attention to detail, and effective communication are critical soft skills for collaborating with cross-functional teams and presenting findings. These skills and qualifications are vital for accurately modeling complex manufacturing systems, identifying process improvements, and driving operational efficiency.

What is the difference between Simulation Engineer Siemens Plant Simulation vs Simulation Engineer AnyLogic?

AspectSimulation Engineer Siemens Plant SimulationSimulation Engineer AnyLogic
CredentialsBachelor's or Master's in Engineering, Computer Science, or related fields; familiarity with Siemens Plant Simulation softwareBachelor's or Master's in Engineering, Computer Science, or related fields; experience with AnyLogic software
Work EnvironmentManufacturing, logistics, and industrial settings using Siemens Plant Simulation for process optimizationLogistics, supply chain, and manufacturing environments using AnyLogic for simulation modeling
Industry UsagePrimarily in manufacturing and industrial sectors with Siemens toolsBroader industry use including logistics, healthcare, and manufacturing with AnyLogic

The main difference between a Simulation Engineer Siemens Plant Simulation and a Simulation Engineer AnyLogic lies in the software expertise and industry focus. Siemens Plant Simulation specialists focus on manufacturing process optimization within industrial environments, while AnyLogic engineers work across diverse sectors using flexible simulation tools. Both roles require similar educational backgrounds and skills but differ in software specialization and application areas.

What are popular job titles related to Simulation Engineer Siemens Plant Simulation jobs in Raleigh, NC?

For Simulation Engineer Siemens Plant Simulation jobs in Raleigh, NC, the most frequently searched job titles are:

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The top searched job categories for Simulation Engineer Siemens Plant Simulation jobs in Raleigh, NC are:

What cities near Raleigh, NC are hiring for Simulation Engineer Siemens Plant Simulation jobs?

Cities near Raleigh, NC with the most Simulation Engineer Siemens Plant Simulation job openings:

Infographic showing various Simulation Engineer Siemens Plant Simulation job openings in Raleigh, NC as of August 2026, with employment types broken down into 91% Full Time, 5% Part Time, and 4% Contract. Highlights an 87% Physical, 5% Hybrid, and 8% Remote job distribution, with an average salary of $119,954 per year, or $57.7 per hour.

Modeling and Simulation Manager

Vulcan Elements

Raleigh, NC

Full-time

Re-posted 20 days ago


Job description

Vulcan Elements is manufacturing American rare-earth permanent magnets for a secure, resilient future. With a focus on national security and economic resiliency, we serve critical industries such as defense, aerospace, and automotive powering a high-technology future. Vulcan Elements is building a team of ambitious professionals committed to Mission Focus, Technical Excellence and Transparency.

As the Modeling and Simulation Manager you will grow and lead a multidisciplinary team of computational scientists and engineers, driving physics-based and data-based modeling efforts that directly improve magnet performance, production yields, and process efficiency.

This is a hands-on technical leadership role. You will both contribute directly to modeling work and grow a team with deep expertise across a variety of modeling and simulation modalities, including but not limited to mechanical, fluid dynamics, electronic structure, and mathematical and image analysis. Your group's output will shape process decisions, reduce experimental iteration cycles, and create quantitative links between structure, processing conditions, and final properties.

This role will initially support pilot-scale and R&D activities (RTP, NC), with the potential to contribute to commercial plant operations (Benson, NC) in the next year.

The ideal candidate has hands-on experience with one or more of COMSOL, Fluent, finite element analysis, thermodynamic modeling (FactSage, ThermoCalc), mathematical and image analyses, and density functional theorgy, as well as experience as a people leader.

Responsibilities

Build and manage a matrixed modeling and simulations team with broad expertise spanning Finite element analysis, Computational fluid dynamics, Stress/Strain analysis, thermodynamic modeling, mathematical/image analysis, and DFT; define hiring roadmap, team structure, and capability milestones.

  • Translate R&D priorities into a modeling agenda with clear deliverables, timelines, and success criteria in partnership with process engineering, materials science, and production teams.
  • Foster a culture of scientific rigor, reproducibility, and rapid iteration; establish standards for model validation, documentation, and peer review.
  • Present results and recommendations to technical and executive stakeholders; communicate uncertainty and model limitations clearly.

Responsibilities and tasks outlined are not exhaustive and may change as determined by the needs of the business.

Qualifications

  • Ph.D. or M.S. in Materials Science, Chemical Engineering, Mechanical Engineering, Applied Physics, or a related quantitative field.
  • 5+ years of hands-on experience with COMSOL, Fluent, or equivalent; demonstrated ability to build and validate coupled multiphysics models and finite element analysis (FEA).
  • Strong mathematical modeling background; experience with image analysis, machine learning, statistical modeling, or signal processing applied to materials characterization data.
  • Familiarity with rare earth magnets, NdFeB alloy systems, or related metallic/magnetic materials.
  • Experience leading or mentoring a small technical team; ability to set priorities, provide technical guidance, and develop junior researchers.
  • Proficiency in Python, MATLAB, Git, or equivalents for scripting, data analysis, and model post-processing.
  • Strong written and verbal communication skills; able to produce clear technical reports and present complex results to non-specialist audiences.

Must be a U.S. Person due to required access to U.S. export-controlled information or facilities

Preferred Qualifications

  • Direct experience with DFT codes (VASP, Quantum ESPRESSO, or similar) or demonstrated ability to direct and interpret DFT studies.
  • Background in rare earth processing, hydrometallurgy, or magnet manufacturing.
  • Experience with grain boundary diffusion processes or sintering simulation.
  • Familiarity with thermodynamic modeling and databases such as FactSage, or ThermoCalc
  • Knowledge of machine learning principles for data analysis
  • Familiarity with electron microscopy image analysis (SEM/EDS/EBSD) and quantitative microstructural characterization.
  • Publication record in computational materials science, process simulation, or permanent magnets.
  • Experience managing budgets, external collaborators, or academic partnerships.