Propulsion Engineer – Thermo-Mechanical Analysis
Listed on 2026-09-10
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Engineering
Mechanical Engineer
At Blue Origin, we envision millions of people living and working in space for the benefit of Earth. We’re working to develop reusable, safe, and low-cost space vehicles and systems within a culture of safety, collaboration, and inclusion. Join our team of problem solvers as we add new chapters to the history of spaceflight! This role is part of the Blue Origin Engines business unit, where our focus is the design, development, manufacturing, and testing of engines and propulsion systems.
Built for multiple uses, our family of engines is powering the next generation of rockets for commercial, civil, national security, and human spaceflight. As part of our hardworking team of engineers, you will own the thermo-mechanical modeling of our large-scale rotating hardware. You will build and maintain 2D axisymmetric whole-engine models of the rotor and casing, integrate them with secondary-flow networks, and predict the metal temperatures, structural margins, and running clearances that determine whether our turbo machinery performs and survives.
Additionally, you will be working with the integration and test groups for iterative learning and model corrections as the system matures through the design lifecycle. This position is integral to the success of our missions and requires strong familiarity with rotating-equipment structural and thermal analysis. Special Mentions [Edit or remove as needed] Relocation provided Travel expected up to 25% of the time Interviews will include a technical assessment.
include but are not limited to:
- Develop, maintain, and own 2D axisymmetric thermo-mechanical whole-engine / whole-pump models of rotating equipment, predicting metal temperatures, component deflections, and clearances across the full operating envelope.
- Translate 3D component and assembly geometry into efficient 2D axisymmetric representations that capture the governing thermal and structural features.
- Implement transient operating profiles (startup, acceleration, steady-state, throttle transients, shutdown, and cooldown / soak-back) and assess their effect on differential growth and clearances.
- Work closely with secondary-flow analysts to develop conjugate thermal-fluid models, translating internal-flow network outputs (cavity pressures, temperatures, leakage flows, windage) into convective boundary conditions using rotating-disc, gaspath, and cavity heat-transfer correlations; calibrate against rig and engine test data.
- Apply thermal boundary conditions to axisymmetric structural models to predict rotor stack, casing stack separation margin, radial fits, and critical radial / axial clearance closure across transients for critical flow area and rub margin assessment.
- Perform component structural margin, bolted-joint, and interference-fit assessments using 2D and 3D ANSYS, and feed results to life assessment (LCF / HCF / creep).
- Synthesize thermal and structural analysis results into actionable operability guidance, informing and negotiating system-level Con Ops trades that balances hardware reliability and life against mission performance objectives.
- Collaborate across disciplines — design, aero / CFD, secondary flow, rotor dynamics, materials, and test — to anchor analysis assumptions and resolve complex hardware issues.
- Develop and maintain analysis-driven design requirements and documentation; contribute technical artifacts to subsystem and program gated reviews (SRR, PDR, CDR, MRR, TRR).
- Minimum of 6 years of experience in mechanical / structural / thermal analysis of machinery systems or comparable high-performance hardware (or fewer years with demonstrated ownership of a whole-engine / 2D axisymmetric thermo-mechanical model).
- Hands-on experience with transient thermal and nonlinear structural finite element analysis in ANSYS (contact, plasticity, thermal-structural coupling).
- Demonstrated experience of creating and building (not just running) whole-engine / 2D axisymmetric thermo-mechanical models of rotating equipment.
- Ability to independently derive convective heat-transfer boundary conditions from engineering correlations (does not depend on a separate CFD team to populate a thermal model).
- Experience working in cross-disciplinary engineering teams.
- A track record of taking ownership, showing resilience in the face of challenges, and consistently delivering results.
- Bachelor's degree in Mechanical Engineering, Aerospace Engineering, or a related field.
- 8+ years of…
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