(Senior) Opto-Mechanical Engineer
Who We Are
Caelora is a Munich-based company, founded in 2026 out of Marvel Fusion, focused on unlocking the next wave of impact from high-energy ultrashort-pulse laser systems. Led by an experienced team and supported by a growing team of laser scientists and engineers, we combine deep laser expertise with decades of industrial execution experience.
How We Work
We bring energy and enthusiasm to everything we do – and hold ourselves to the highest standards to match it. We challenge ideas openly, commit decisively, and take full ownership. Our culture is built on character, clear communication, and a shared, relentless ambition to move fast and deliver impact.
Hiring at Caelora
Building the future of high-energy laser technology requires exceptional talent. Our hiring process is designed to help you learn more about us while we get to know your background, skills, and potential. Our process:
- Application Screening
- Recruiter Call
- Hiring Lead Interview
- On-site Interviews
- Offer
The impact you will make
Your Responsibilities
- Design and optimize ultra-stable optical mounts and optomechanical assemblies that maintain micron- to sub-micron positioning and high angular stability under thermal loads, mechanical vibrations, and environmental changes.
- Perform and interpret thermal and thermo-mechanical FEA, including steady-state and transient thermal simulations, temperature gradients, thermal expansion, heat transfer, cooling concepts, and thermally induced deformation.
- Translate thermal results into optomechanical performance by evaluating how temperature changes and gradients affect mirror displacement, tip/tilt, surface deformation, optical alignment, and wavefront quality.
- Perform and interpret modal, harmonic, and random-vibration/PSD analyses to identify structural resonances and predict optical displacement and angular stability under realistic environmental excitation.
- Optimize structures for high eigenfrequencies and low vibration sensitivity while maintaining appropriate mass, manufacturability, accessibility, and adjustment capability.
- Apply principles of multi-degree-of-freedom precision kinematics to develop mounts that provide accurate, repeatable spatial and angular alignment.
- Design kinematic, semi-kinematic, and flexure-based mechanisms capable of minimizing friction, backlash, hysteresis, and thermally induced stresses.
- Select appropriate materials based not only on mechanical strength but also on CTE, thermal conductivity, stiffness-to-mass ratio, dimensional stability, vacuum compatibility, and optical-system requirements.
- Design and integrate passive and active thermal management solutions, including conduction paths, water cooling, thermal interfaces, heat exchangers, and temperature monitoring as required.
- Select and integrate precision adjustment components, including threads, springs, flexures, bearings, actuators, motors, and precision stages, considering load capacity, stiffness, resolution, backlash, repeatability, and stability.
- Integrate motorized and manual adjustment mechanisms while accounting for force transmission, actuator stiffness, mechanical play, heat generation, and their influence on optical stability.
- Use CAD and mechanical simulation tools to develop, analyze, optimize, and document designs in close collaboration with optical physicists and systems engineers.
- Support prototype testing and correlate FEA predictions with displacement, vibration, thermal, and alignment measurements.
- Define mechanical and thermal requirements, acceptance criteria, tolerances, interfaces, and verification procedures for precision optomechanical systems.
- Contribute to an inclusive and collaborative team environment in which all team members feel supported, valued, and heard
What you bring
- Proven experience designing stable optical mounts, precision mechanisms, or optomechanical assemblies, ideally for demanding laser or optical systems.
- Strong understanding of precision mechanical design and kinematics, including spatial and angular degrees of freedom, stiffness, backlash, repeatability, and alignment.
- Experience with thermal and thermo-mechanical simulation, including temperature gradients, thermal expansion, heat transfer, cooling concepts, and resulting structural deformation.
- Experience with structural and vibration analysis, particularly modal analysis and evaluation of mechanical stability.
- Proficiency in CAD and mechanical simulation tools such as Inventor, SolidWorks, ANSYS, or equivalent.
- Experience selecting and integrating precision mechanical components such as flexures, bearings, springs, adjustment screws, actuators, and motors.
- Good understanding of engineering materials and their relevant properties, including CTE, stiffness, thermal conductivity, dimensional stability, and vacuum compatibility.
- Ability to translate optical requirements into mechanical, thermal, positioning, and stability requirements and work effectively with optical engineers, physicists, controls engineers, and manufacturing teams.
- Fluent in English
- A high degree of flexibility, adaptability, and a proactive, can-do attitude
- Strong quantitative and analytical skills
- You are willing to reside in the greater Munich area
- Willingness to travel
What sets you apart
- Direct experience with high-energy, high-power, or ultra-short-pulse laser systems, particularly compressors, stretchers, large mirrors, gratings, or beam-transport systems.
- Experience designing optomechanical systems requiring micron/sub-micron positional precision and μrad or sub-μrad angular stability.
- Understanding of how mechanical and thermal effects translate into optical performance, including wavefront distortion, mirror deformation, pointing stability, and alignment drift.
- Experience with advanced simulation methods such as coupled thermal-structural analysis, harmonic response, and PSD/random-vibration analysis, including correlation with experimental measurements.
- Experience designing vacuum-compatible precision optomechanics and addressing thermal management, cleanliness, materials, actuators, bearings, and cabling in vacuum.
- Hands-on experience with the manufacturing, assembly, alignment, testing, and validation of large precision optical systems.
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