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Discrete Event Simulation Engineer Jobs in Kyle, TX

Senior Staff Thermal Engineer

Austin, TX · On-site

$103K - $142K/yr

Break down system-level thermal challenges into discrete, testable sub-problems. Define a clear ... Correlate simulation results with hardware measurements and iterate models to maintain * Lead ...

Senior Staff Thermal Engineer

Austin, TX · On-site

$103K - $142K/yr

Break down system-level thermal challenges into discrete, testable sub-problems. Define a clear ... Correlate simulation results with hardware measurements and iterate models to maintain * Lead ...

Respond rapidly to simulated driving events with precision and accuracy * Monitor and log system behavior, reporting issues or anomalies to engineering teams * Assist with ongoing simulation tasks ...

Principal Power Electronics Engineer I

Austin, TX · On-site

$137K - $168K/yr

... e.g. discrete linear regulators, Buck, Boost, Buck-boost, Flyback, Forward, Half-bridge, Full ... Experience with analysis and simulation tools such as SPICE, LTSPICE, SIMetrix/SIMPLIS, PLECS ...

Principal Power Electronics Engineer I

Austin, TX · On-site

$111K - $131K/yr

... e.g. discrete linear regulators, Buck, Boost, Buck-boost, Flyback, Forward, Half-bridge, Full ... Experience with analysis and simulation tools such as SPICE, LTSPICE, SIMetrix/SIMPLIS, PLECS ...

Principal Power Electronics Engineer I

Austin, TX · On-site

$111K - $131K/yr

... e.g. discrete linear regulators, Buck, Boost, Buck-boost, Flyback, Forward, Half-bridge, Full ... Experience with analysis and simulation tools such as SPICE, LTSPICE, SIMetrix/SIMPLIS, PLECS ...

Principal Power Electronics Engineer I

Austin, TX · On-site

$137K - $168K/yr

Experience with analysis and simulation tools such as SPICE, LTSPICE, SIMetrix/SIMPLIS, PLECS ... Experience designing and testing isolated and non-isolated DC-DC power converters (e.g. discrete ...

Principal Power Electronics Engineer I

Austin, TX · On-site

$137K - $168K/yr

Experience with analysis and simulation tools such as SPICE, LTSPICE, SIMetrix/SIMPLIS, PLECS ... Experience designing and testing isolated and non-isolated DC-DC power converters (e.g. discrete ...

Staff Electrical Engineer

Austin, TX · On-site

$114K - $220K/yr

Strong knowledge of circuit simulation tools, layout verification tools, modeling tools, and UNIX ... Understanding of mixed signal solutions including discrete time digital signal processing

Showing results 21-40

Discrete Event Simulation Engineer information

See Kyle, TX salary details

$37.4K

$118.4K

$182.8K

How much do discrete event simulation engineer jobs pay per year?

As of Aug 20, 2026, the average yearly pay for discrete event simulation engineer in Kyle, TX is $118,407.00, according to ZipRecruiter salary data. Most workers in this role earn between $88,300.00 and $140,600.00 per year, depending on experience, location, and employer.

What is a discrete event simulation engineer?

A Discrete Event Simulation Engineer is a professional who designs, develops, and implements simulation models that represent real-world systems as a series of distinct events occurring over time. These engineers use specialized software and analytical methods to model complex processes such as manufacturing lines, logistics networks, or service systems. Their work helps organizations optimize performance, test scenarios, and make data-driven decisions without disrupting actual operations. Skills in programming, systems analysis, and mathematics are essential for this role.

What are the key skills and qualifications needed to thrive as a discrete event simulation engineer?

To thrive as a Discrete Event Simulation Engineer, you need a strong background in mathematics, computer science, and systems engineering, typically supported by a relevant degree. Proficiency in simulation software such as Arena, Simul8, or AnyLogic, as well as programming languages like Python or C++, is commonly required. Analytical thinking, problem-solving abilities, and effective communication skills are crucial for interpreting data and collaborating with cross-functional teams. These skills ensure accurate modeling, efficient problem resolution, and successful implementation of simulation solutions in complex systems.

What are some common challenges faced by discrete event simulation engineers when integrating simulation models with existing business processes?

Discrete Event Simulation Engineers often encounter challenges when aligning simulation models with real-world business processes, such as ensuring data accuracy, managing stakeholder expectations, and adapting to frequently changing operational parameters. It can be difficult to gather precise input data and validate models against actual system performance. Additionally, engineers must communicate complex simulation results to non-technical stakeholders and collaborate closely with cross-functional teams to implement recommended changes. Overcoming these challenges requires strong analytical skills, effective communication, and adaptability.

What is the difference between Discrete Event Simulation Engineer vs Operations Research Analyst?

AspectDiscrete Event Simulation EngineerOperations Research Analyst
Required CredentialsBachelor's or Master's in Engineering, Computer Science, or related field; proficiency in simulation softwareBachelor's or Master's in Mathematics, Statistics, or Industrial Engineering; strong analytical skills
Work EnvironmentEngineering teams, manufacturing, logistics, or IT sectorsConsulting firms, government agencies, or corporate planning departments
Industry UsageModeling complex systems to optimize processes and workflowsAnalyzing data to improve decision-making and resource allocation

While both roles involve analytical skills and modeling, Discrete Event Simulation Engineers focus on creating simulation models of systems to optimize performance, often using specialized software. Operations Research Analysts analyze data and develop models to support strategic decisions. The roles overlap in skills but differ in application and industry focus.

What are popular job titles related to Discrete Event Simulation Engineer jobs in Kyle, TX?

For Discrete Event Simulation Engineer jobs in Kyle, TX, the most frequently searched job titles are:

What cities near Kyle, TX are hiring for Discrete Event Simulation Engineer jobs?

Cities near Kyle, TX with the most Discrete Event Simulation Engineer job openings:

Senior Staff Thermal Engineer

Enphase Energy

Austin, TX • On-site

$103K - $142K/yr

Full-time

Re-posted 25 days ago


Enphase Energy rating

6.6

Company rating: 6.6 out of 10

Based on 15 frontline employees who took The Breakroom Quiz

131st of 159 rated electronics manufacturers


Job description

Enphase Energy is a global energy technology company and a leading provider of solar, battery, and electric vehicle charging products. Founded in 2006, our innovative microinverter technology revolutionized solar power, making it a safer, more reliable, and scalable energy source. Today, the Enphase Energy System enables users to make, use, save, and sell their own power. Enphase is also one of the most successful and innovative clean energy companies in the world, with more than 80 million products shipped across 160 countries.

Join our dynamic teams designing and developing next-gen energy technologies and help drive a sustainable future!

About the Role

The Enphase Energy SST Product Innovation Team sits in the Office of the CTO and is responsible for defining, prototyping, and scaling the next generation of Enphase storage and power systems. We are a fast-moving, multi-disciplinary group on a mission to push the boundaries of energy density, reliability, and system efficiency.

You will be part of thermal solution team for cutting-edge medium-voltage power conversion systems, working side-by-side with power electronics, mechanical, and manufacturing engineers to bring world-class products to life. Your work will directly impact the reliability and performance of systems deployed at scale across the globe.

What You Will Do

  • Apply rigorous first-principles thermal analysis: Approach every thermal problem with strong theoretical grounding - deriving analytical models from fundamental heat transfer (conduction, convection, radiation) before committing to simulation or hardware. Use theory to set expectations, bound the solution space, and critically evaluate simulation outputs.
  • Decompose complex thermal problems into incremental steps: Break down system-level thermal challenges into discrete, testable sub-problems. Define a clear experiment or analysis for each sub-problem, resolve it completely, and build toward the full solution with confidence at each stage. Document the learning at every step so the team accumulates durable thermal knowledge.
  • Design and harvest test results from thermal test vehicles (TTVs): Conceive and construct thermal test vehicles - purpose-built mock-up devices that simulate the thermal behavior of a system without testing the real device. Use TTVs to isolate specific thermal mechanisms (contact resistance, airflow uniformity, cold plate effectiveness, transient response) independent of full product complexity.
  • Own end-to-end thermal solution: Lead thermal design from concept through validation for high-power-density power electronics and energy storage enclosures, ensuring junction temperatures, surface temperatures, and coolant conditions meet reliability targets across all operating and ambient environments.
  • Design and optimize air-cooled systems: Develop forced-air and natural-convection cooling solutions, including heat sink geometry, fan selection, ducting, airflow channeling, and system-level pressure-drop budgets. Apply CFD tools (Ansys ICEPAK, FloTHERM, SolidWorks Flow Simulation, or Fluent) to model and optimize airflow and thermal resistance.
  • Drive thermal analysis and simulation: Build detailed thermal resistance networks and CFD models to predict steady-state and transient temperature profiles. Correlate simulation results with hardware measurements and iterate models to maintain < 5C prediction accuracy.
  • Lead thermal testing and validation: Design and execute thermal characterization test plans using structured thermal test vehicles and incremental experimentation. Build bench setups with thermocouples, RTDs, IR cameras, and data acquisition systems. Analyze results against theoretical predictions, identify failure modes, and drive design improvements with data.
  • Define thermal design rules and margins: Establish component-level and system-level thermal budgets, derating curves, and design guidelines. Drive thermal margin reviews as part of the product development process.

Who You Are and What You Bring

  • BS, MS, or PhD in Mechanical Engineering, Aerospace Engineering, or closely related field
  • Job title and level determined by candidate experience:
  • Staff Engineer: BS + 8 yrs | MS + 6 yrs | PhD + 3 yrs: Sr. Staff Engineer:BS + 12 yrs | MS + 8 yrs|PhD + 5 yrs
  • Candidates with greater experience are strongly encouraged to apply
  • Strong theoretical thermal analysis - required: Demonstrated mastery of fundamental heat transfer: conduction (Fourier's law, spreading resistance, fin analysis), forced and natural convection (Nusselt/Reynolds correlations, boundary layer theory), radiation, and coupled transient analysis. Must be able to derive closed-form estimates before running any simulation and explain discrepancies between theory and measurement from first principles.
  • Thermal test vehicle design and execution - required: Proven experience designing thermal test vehicles (TTVs) - mock-up devices that simulate the thermal behavior of a system without testing the real device. Ability to define heater placement, sensor layout, boundary conditions, and test matrix to generate clean, interpretable data. Experience correlating TV test results to analytical models and CFD.
  • Structured problem decomposition - required: Ability to decompose a complex, multi-variable thermal problem into a logical sequence of incremental sub-problems, each with a defined hypothesis, experiment, and pass/fail criterion. Skilled at knowing which sub-problem to solve first and how to build toward a system-level solution efficiently.
  • Deep expertise in air-cooled thermal design: Proven track record designing forced-air and natural-convection cooling systems for power electronics, including heat sink selection/optimization, fan-curve matching, system impedance curves, and CFD correlation.
  • Proficiency with thermal simulation tools: SolidWorks Flow Simulation, Ansys Fluent, or equivalent. Ability to set up, run, and critically interpret CFD and thermal network results.
  • Thermal testing and instrumentation: Experience designing thermal test plans, instrumenting hardware with thermocouples and resistance temperature detectors (RTDs), operating IR cameras, and processing thermal data.
  • Product design for reliability: Experience designing thermal systems for long-term reliability under thermal cycling, humidity, altitude, and outdoor operating environments.
  • Strong CAD proficiency: SolidWorks preferred; used for enclosure geometry, cooling geometry, and integration with the mechanical team.
  • Excellent communication skills: Ability to clearly present thermal analyses, test results, and design trade-offs to multi-disciplinary teams and leadership.
  • Solution-oriented thinking: Focus on identifying and implementing practical solutions rather than just identifying problems. Ability to quickly assess complex thermal challenges, generate multiple solution paths, and select the most effective approach based on constraints, timeline, and impact.

Additional Desired Skills

  • Familiarity with IEC, UL, and IEEE standards for electrical equipment thermal ratings and energy storage systems
  • Background in outdoor/field-deployed product thermal design (wide ambient range, solar load, weathering)
  • Familiarity with power electronics loss modeling to generate accurate thermal source inputs

Work Location

Austin, TX - Full-time, On-site

The base pay range for this position is $110,000 to $167,000 per year. This salary range may be modified in the future. The successful candidate's starting pay will be determined based on job-related skills, experience, education or training, work location, and market conditions. This position is also eligible for bonus, equity, and benefits.

#SST

Employment Type: Full Time Employee (Experienced)

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