1

Optimize Electric Jobs in California (NOW HIRING)

$35 - $50/hr

Flexible schedule Procore Specialist Integrator BLVD Electric Inc. - Woodland Hills, CA About the ... Optimize document control, RFIs, submittals, and scheduling processes * Troubleshoot system issues ...

Purchasing Assistant

Carlsbad, CA · On-site

$25 - $32/hr

For over 40 years, Neal Electric has been providing electrical services to our customers throughout ... Identify and optimize common inventories among facilities * Training duties as needed * Coordinate ...

Installation Manager

Redwood City, CA · On-site

$110K - $160K/yr

Electric Air is building a modern home climate company. We install heat pumps across the Bay Area ... Work closely with sales and the HVAC project manager to optimize business success. * Address and ...

next page

Showing results 1-20

Optimize Electric information

What is the difference between Optimize Electric vs Electrician?

AspectOptimize ElectricElectrician
CertificationsElectrical certifications, possibly specialized in optimization or energy efficiencyJourneyman or master electrician license
Work EnvironmentDesign, planning, and consulting for electrical systems, often in offices or project sitesInstallation, maintenance, and repair of electrical systems on-site
Industry UsageConsulting firms, energy companies, project planningConstruction, maintenance, residential, and commercial electrical work

Optimize Electric professionals focus on improving electrical system efficiency through design and consulting, while Electricians perform hands-on installation and repairs. Both roles require electrical certifications but differ in daily tasks and work settings.

What are popular job titles related to Optimize Electric jobs in California?

For Optimize Electric jobs in California, the most frequently searched job titles are:

What job categories do people searching Optimize Electric jobs in California look for?

The top searched job categories for Optimize Electric jobs in California are:

What cities in California are hiring for Optimize Electric jobs?

Cities in California with the most Optimize Electric job openings:

Senior Motor Electromagnetic Engineer

Zipline

South San Francisco, CA • On-site

$125K - $172K/yr

Full-time

Posted 18 days ago


Key responsibilities

  • Develop, validate, and maintain electromagnetic models for propulsion and auxiliary motors.

  • Build a reusable library of motor models, simulation results, and validation evidence.

  • Generate performance maps, loss breakdowns, and sensitivity studies to support motor development and optimization.


Job description

About the Role

Zipline is looking for a Motor Electromagnetic Engineer to develop and own the analytical and numerical modeling and validation capabilities used to design, select, and optimize electric machines across our aircraft platforms.

In this role, you will build a common motor-modeling framework that enables engineers to rapidly explore design spaces, understand performance tradeoffs, and optimize motors as part of the complete aircraft system. You will create and maintain electromagnetic models, performance maps, loss models, and scalable design-space datasets that support motor development from early architecture studies through detailed design and flight validation.

You will work closely with mechanical, thermal, power electronics, controls, aerodynamics, systems, and vehicle-performance engineers. Rather than optimizing a motor in isolation, you will evaluate how motor characteristics affect aircraft-level outcomes such as range, payload, acoustic performance, thermal margin, reliability, mass, and cost.

This is a highly cross-functional role with broad technical ownership. The ideal candidate combines strong electric-machine fundamentals with practical modeling judgment and an ability to turn complex simulation results into clear engineering decisions.

What You'll Do
  • Develop, validate, and maintain electromagnetic models for Zipline's propulsion  and auxiliary motors.
  • Build a reusable and well-governed library of motor models, assumptions, material data, winding definitions, simulation results, and validation evidence.
  • Generate torque-speed envelopes, efficiency maps, loss breakdowns, voltage and current requirements, flux-linkage and inductance maps, demagnetization limits, and fault-performance data.
  • Create scalable design-space "clouds" and perform sensitivity and uncertainty studies across geometry, materials, windings, temperature, tolerances, and operating conditions.
  • Develop reduced-order and surrogate models for aircraft optimization, mission simulation, controls development, and thermal analysis.
  • Integrate motor models with inverter, battery, propeller or driven-load, thermal, and aircraft mission models.
  • Evaluate motor architectures, electromagnetic materials, supplier concepts, and emerging technologies using first-principles analysis, simulation, and test data.
  • Optimize designs for efficiency, mass, torque density, thermal performance, acoustic behavior, controllability, reliability, and cost.
  • Develop model-validation plans that define test objectives, operating points, required measurements, instrumentation accuracy, acceptance criteria, and correlation metrics.
  • Plan and execute dynamometer experiments to characterize motor performance and validate electromagnetic, loss, and thermal models across relevant operating conditions. 
  • Analyze measurement uncertainty, test repeatability, and sources of discrepancy between simulation and experiment, and use those findings to improve model assumptions and fidelity.
  • Work closely with test engineers to develop instrumentation and test methods that produce the high-quality data required for model correlation and validation.
  • Use dynamometer, component, and aircraft test data to calibrate models where appropriate and independently validate their predictive accuracy.
What You'll Bring
  • Master's degree or PhD in electrical engineering, mechanical engineering, applied physics, or a related field, with a focus on electric machines, electromagnetics, optimization, or electric powertrains.
  • Strong understanding of electric-machine fundamentals, including magnetic circuits, winding theory, d-q models, saturation, harmonics, losses, thermal effects, and permanent-magnet behavior.
  • Significant experience developing and interpreting finite-element and reduced-order models of electric machines.
  • Experience with Motor-CAD or similar software (JMAG, Maxwell, COMSOL, etc) for electromagnetic, thermal, and performance modeling of electric machines.
  • Strong proficiency in MATLAB for model development, automation, optimization, data analysis, and visualization.
  • Experience generating motor maps or reduced-order models for system simulation, controls, or powertrain optimization.
  • Hands-on experience planning and executing electric-motor dynamometer tests for characterization or model validation. 
  • Experience defining test matrices, selecting appropriate measurements and instrumentation, and interpreting experimental data in the context of model assumptions.
  • Experience correlating electromagnetic models against dynamometer or hardware test results and diagnosing the root causes of model-to-test discrepancies.
  • Understanding of experimental uncertainty, repeatability, sensor accuracy, and their impact on model validation
  • Strong first-principles problem-solving skills and the ability to identify and challenge weak modeling assumptions.
  • Ability to communicate complex technical results clearly across engineering disciplines.
  • Demonstrated ownership of technically ambiguous projects from problem definition through recommendation and implementation.

Nice to Have

  • Experience with aerospace, electric aviation, robotics, automotive traction, or other mass- and efficiency-constrained applications.
  • Experience optimizing multiple motor types across a common vehicle or product platform.
  • Experience with Motor-CAD (or similar software) python scripting, MATLAB-based optimization workflows, and automated generation of large motor design spaces.
  • Familiarity with additional electromagnetic tools such as Ansys Maxwell, JMAG, etc.
  • Knowledge of motor-control techniques, inverter limitations, field weakening, sensorless control, and fault-tolerant operation.
  • Experience with high-accuracy motor characterization, including efficiency mapping, back-EMF measurement, torque constant, winding resistance, inductance, loss separation, thermal characterization, or cogging torque measurement.
  • Familiarity with torque transducers, power analyzers, encoders, temperature instrumentation, data-acquisition systems, and other common motor-dyno instrumentation.
  • Familiarity with thermal-network models, computational fluid dynamics, structural analysis, rotor dynamics, or electromagnetic noise and vibration.
  • Experience with multi-objective optimization, design of experiments, uncertainty quantification, surrogate modeling, or machine-learning-assisted design exploration.
  • Experience building internal engineering tools, simulation pipelines, databases, or cloud-based computational workflows.
  • Familiarity with electrical-steel characterization, permanent-magnet properties, AC winding losses, rotor eddy-current losses, and high-speed machine design.
  • Experience evaluating emerging motor topologies or technologies and determining whether their system-level benefits justify development risk.
  • Working knowledge of aircraft performance, propeller or fan loading, battery systems, and mission-level energy optimization.

What Success Looks Like

Within your first year, you will have established a trusted and reusable modeling and validation foundation for Zipline's electric machines. Engineering teams will be able to evaluate motor concepts more quickly, understand sensitivity to key design parameters, and make decisions using models whose predictive accuracy has been demonstrated against high-quality experimental data.

You will have established a disciplined model-validation process in which simulation predictions drive experimental plans, dynamometer results expose gaps in model assumptions, and validated models become increasingly capable of predicting motor behavior outside the specific conditions already tested.

Your work will help Zipline select the right motor architecture for each application, reduce unnecessary iteration, identify promising new technologies, and optimize electric machines as integrated elements of the aircraft rather than isolated components.

What Else You Need To Know

Zipline is an equal opportunity employer and prohibits discrimination and harassment of any type without regard to race, color, religion, age, sex, national origin, disability status, genetics, protected veteran status, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state or local laws or our own sensibilities.

We value diversity at Zipline and welcome applications from those who are traditionally underrepresented in tech. If you like the sound of this position but are not sure if you are the perfect fit, please apply!