Dein Job im Zukunftsmarkt Laser und Photonik
Aufgabengebiet
- Feinmechanische Montage und Justage von optomechanischen Baugruppen sowie Lasersystemen
- Integration, Inbetriebnahme und Test komplexer optischer Referenzsysteme – von der Baugruppe bis zum fertigen System
- Aktive Mitwirkung bei der systematischen Fehleranalyse und -behebung mechanischer, optischer und elektronischer Teilsysteme
- Erstellung, Optimierung und Pflege von Fertigungs- und Prüfdokumentationen sowie Arbeits- und Prüfanweisungen
- Unterstützung bei der Produktionsüberführung neuer Systeme und Baugruppen, u. a. durch Prozessvalidierung und Einweisung der Fertigungsteams
- Enge Zusammenarbeit mit Entwicklung und Produktion zur kontinuierlichen Optimierung von Fertigungsprozessen und -verfahren
Profil
- Abgeschlossenes Studium in Maschinenbau, Feinwerktechnik, Mechatronik, Elektrotechnik, Physik, Photonik oder einer vergleichbaren technischen Fachrichtung
- Praktische Erfahrung in mindestens einem der Bereiche: Lasertechnik, Photonik, Quantenoptik, Präzisionsmechanik oder Regelungs- und Steuerelektronik (z. B. durch Studienprojekte, Praktika oder Abschlussarbeiten)
- Fähigkeit, funktionale Wechselwirkungen zwischen mechanischen, optischen und elektronischen Systemkomponenten zu erfassen
- Strukturierte, präzise und lösungsorientierte Arbeitsweise
- Freude an experimenteller Laborarbeit sowie Hands-on-Mentalität
- Engagement für die kontinuierliche Weiterentwicklung von Fertigungsprozessen
- Gute Deutsch- und Englischkenntnisse in Wort und Schrift
Wir bieten
- Spannende und anspruchsvolle Aufgaben in einem dynamisch wachsenden Markt
- Eigenverantwortliches Arbeiten in einem hochmotivierten Team mit Gestaltungsfreiraum
- Eine Vergütung, die Sie am Unternehmenserfolg beteiligt sowie ein Modell zur betrieblichen Altersvorsorge
- Eine individuelle und praxisorientierte Einarbeitung sowie Möglichkeiten zur beruflichen Weiterbildung
- JobRad-Leasing oder kostenloses Deutschlandticket
- 30 Tage Urlaub sowie regelmäßige Mitarbeiterevents
- Einen sicheren Arbeitsplatz und eine unbefristete Festanstellung sowie gute Chancen für Berufsanfängerinnen und -anfänger
- Flache Hierarchien, Duz-Kultur und kurze Entscheidungswege
TECHNICAL & MARKET ANALYSIS | Appended by Quantum.Jobs
The rise of production-level engineering roles for specialized optical reference systems represents a critical turning point as quantum technologies transition from laboratory environments to industrial manufacturing. High-precision laser sources and stable optical frequency references underpin the structural architecture of neutral-atom and trapped-ion quantum computing hardware, alongside advanced quantum sensing mechanisms. Consequently, establishing predictable, deterministic manufacturing workflows for these systems is paramount to ensuring component reliability and scaling quantum hardware. By bridging the gap between bespoke scientific configurations and standardized assembly methodologies, this function directly addresses the sector-wide bottleneck of component reproducibility. Ultimately, this industrial engineering discipline reduces the systemic translation risk inherent in moving deep-tech innovations through consecutive technology readiness levels toward global commercial viability.
The quantum hardware sector is currently transitioning from a research-dominated paradigm toward integrated product engineering, where hardware scalability and component integration serve as the primary growth determinants. Within this value chain, optical sub-systems operate as foundational infrastructure dependencies, demanding extreme environmental isolation, rigorous thermal management, and long-term mechanical stability. Sector-wide efforts continue to address talent and integration challenges in quantum systems, particularly as the demand for stable laser references moves from scientific pilot lines to predictable, high-volume production facilities. This macro shift introduces significant supply chain and process validation pressures, as slight deviations in component alignment or thin-film optical coatings can compromise the entire phase stability of a quantum system.
Concurrently, macro constraints such as specialized component availability and the lack of unified industry benchmarking standards introduce operational vulnerabilities. The deep-tech ecosystem requires dedicated methodologies that translate complex optical architectures into verified, reliable hardware blocks capable of withstanding industrial or field deployments. This requires close coordination between product developers and assembly specialists to optimize structural tolerance parameters before substantial capital is allocated to scaling up production. Furthermore, current industry focus lies on bridging classical and quantum capabilities at scale, which places a premium on manufacturing engineering layers that can reliably manage cross-functional systems across complex, multi-tiered supplier frameworks.
The capability architecture for this role type centers on the synchronization of precision precision optomechanics with systematic process verification protocols. Mastery of functional interactions across mechanical, optical, and control-loop electronics is essential for maintaining the high spectral purity and sub-hertz stability required by quantum reference standards. This background ensures that precision adjustments are systematically integrated into reproducible assembly workflows rather than treated as singular laboratory interventions.
These technical capabilities directly dictate the throughput of advanced photonics manufacturing systems by establishing rigid documentation and quality management standards. Implementing structured error analysis frameworks lowers the failure rate of complex assemblies during final system validation phases. By refining the boundary layer between prototyping and standardized manufacturing, this expertise enables the deterministic scaling of deep-tech systems and accelerates overall deployment cycles across the broader quantum ecosystem. - Accelerates the transition of optical reference architectures from experimental frameworks into standardized commercial deep-tech markets
- Minimizes component-level failure rates by introducing rigorous statistical process controls into high-precision optical assembly environments
- Facilitates the scaling of quantum hardware platforms through the predictable fabrication of high-stability sub-hertz laser systems
- Optimizes production yields by standardizing process validation protocols across overlapping mechanical, optical, and electronic manufacturing segments
- Reduces integration friction between component suppliers and downstream system integrators within the emerging quantum value chain
- Strengthens supply chain predictability through the implementation of rigorous documentation, validation, and verification architectures
- Enhances the thermal and mechanical resilience of advanced optical assemblies destined for rigorous field deployments
- Curbs structural production costs by identifying and mitigating cross-functional engineering bottlenecks during early pilot phases
- Supports technology readiness level maturation by establishing scalable, industrial manufacturing routes for precision optical equipment
- Elevates system-level reproducibility across neutral-atom and trapped-ion hardware modalities through deterministic assembly methodologies
- Protects capital allocations in deep-tech sectors by validating manufacturing scalability prior to large-scale infrastructure investments
- Drives long-term interoperability within photonics ecosystems by enforcing precise physical and optical tolerance boundariesIndustry Tags: Precision Optomechanics, Optical Reference Systems, Deep Tech Manufacturing, Laser Engineering, Process Integration, Quantum Infrastructure, Systems Engineering, Photonics Automation
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