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Laser Programmer Operator Jobs in California (NOW HIRING)

Laser Machine Operator

San Jose, CA · On-site

$41K - $58K/yr

Sierra Circuits is committed to supporting engineers and designers through extensive educational ... The Laser Machine Operator is responsible for setting up, operating, and maintaining the laser ...

Laser Tech lead Engineer

Sunnyvale, CA · On-site

$150K - $230K/yr

We are seeking a highly technical, detail-oriented laser engineer to drive the development and ... operating in complex environments. The company combines custom silicon, integrated sensors, and ...

As a Plasma and Laser Physics Engineer within the EUV Source Performance team, you will play a ... Hands-on experience operating optical, electrical, or plasma-related laboratory instrumentation is ...

Tube Laser Operator

Fremont, CA · On-site

$25 - $32/hr

Read and interpret engineering drawings, work orders, and specifications. * Perform first-piece and ... Previous CNC laser or metal fabrication experience preferred. * TRUMPF tube laser experience highly ...

As a Laser Operator, you will support precision production by operating and programming laser cutting equipment, monitoring part quality, and keeping jobs moving efficiently through the fabrication ...

Read and interpret engineering drawings, work orders, and specifications. * Perform first-piece and ... Previous CNC laser or metal fabrication experience preferred. * TRUMPF tube laser experience highly ...

Sustaining Laser Engineer

Bodega Bay, CA · On-site

$100K - $150K/yr

Diamond Foundry is seeking a Sustaining Laser Engineer to oversee the deployment and optimization ... Diamond Foundry Inc. is committed to operating in full compliance with all applicable state and ...

Showing results 21-40

Laser Programmer Operator information

What is a laser programmer operator?

A Laser Programmer Operator is a skilled technician who programs and operates laser cutting machines to cut, engrave, or mark materials such as metal, plastic, or wood. They use specialized software to create or modify designs, set up the machine parameters, and monitor the cutting process to ensure accuracy and quality. Laser Programmer Operators are responsible for maintaining equipment, troubleshooting issues, and ensuring safety standards are met in the workplace.

What are the key skills and qualifications needed to thrive as a laser programmer operator?

To thrive as a Laser Programmer Operator, you need strong mechanical aptitude, blueprint reading skills, and experience with CNC machinery, typically supported by vocational training or relevant certifications. Familiarity with CAD/CAM software, laser cutting systems, and quality measurement tools is essential for programming and operating equipment efficiently. Attention to detail, problem-solving, and effective communication help ensure precision and safe workplace collaboration. These skills are crucial for maintaining production quality, minimizing errors, and optimizing manufacturing workflows.

What are some typical challenges faced by laser programmer operators, and how can they be addressed on the job?

Laser Programmer Operators often encounter challenges such as interpreting complex technical drawings, ensuring precise machine calibration, and troubleshooting equipment errors. Successfully managing these tasks requires strong attention to detail, familiarity with CAD/CAM software, and a proactive approach to machine maintenance. Collaborating closely with engineers and production teams can help clarify design requirements and streamline production, while ongoing training keeps operators updated on new technologies and best practices.

What is the difference between Laser Programmer Operator vs CNC Machinist?

AspectLaser Programmer OperatorCNC Machinist
CredentialsTypically requires technical training or certification in laser technologyRequires technical training, certifications, or machining experience
Work EnvironmentManufacturing or fabrication shops with laser cutting equipmentMachine shops, manufacturing plants, or fabrication facilities
Industry UsageCommonly used in sheet metal, aerospace, signage, and automotive industriesUsed across various manufacturing sectors including aerospace, automotive, and industrial parts
Job FocusProgramming laser cutting machines for precise cuts and designsSetting up, operating, and maintaining CNC machines for machining parts

While both roles involve working with computer-controlled equipment, Laser Programmer Operators focus on programming laser cutting machines for precise fabrication, whereas CNC Machinists operate a broader range of CNC machines for manufacturing parts. Both require technical skills and familiarity with manufacturing environments, but their specific tasks and equipment differ.

What are popular job titles related to Laser Programmer Operator jobs in California?

For Laser Programmer Operator jobs in California, the most frequently searched job titles are:

What job categories do people searching Laser Programmer Operator jobs in California look for?

The top searched job categories for Laser Programmer Operator jobs in California are:

What cities in California are hiring for Laser Programmer Operator jobs?

Cities in California with the most Laser Programmer Operator job openings:

Laser Design Engineer (Epi/Device)

Palo Alto, CA • On-site

Full-time

Re-posted 29 days ago


Job description

At the core of our technology is a high-density III-V laser array - a critical integrated component in our broader optical system - designed for high-volume deployment in AI infrastructure. We are seeking a Senior Laser Design Engineer to own device design and simulation for this laser array, working in a small, cross-functional team where individual contributions are highly visible and directly shape product outcomes. This role spans the full vertical of laser device design - from active region and heterostructure engineering through waveguide, cavity, and grating simulation for single-frequency laser architectures, as well as electroabsorption modulator design for integrated photonic products. The designs produced in this role must be manufacturable, process-tolerant, and optimized for yield and consistency across production volumes - not just peak performance on a best-case die. In a fabless environment, simulation is the primary design tool and the foundry interface is the execution path; this engineer must be fluent in both. The right candidate brings deep device physics knowledge across multiple laser and modulator architectures and the practical judgment to make design decisions that survive contact with a real foundry process.

Responsibilities

  • Design and optimize III-V heterostructures and multi-quantum well (MQW) active regions for laser, SOA, and electroabsorption modulator applications, with explicit consideration of growth tolerance, process variation, and production yield; develop and maintain active region simulation models using commercial tools (e.g., band structure solvers, 1-D optical confinement solvers, traveling wave laser models).
  • Simulate and optimize laser waveguide geometry, optical confinement factor, far-field profiles, and cavity design parameters for manufacturability; perform grating simulation for DFB and DBR structures including coupling coefficient, stopband, and SMSR - with design margins appropriate for high-volume foundry execution, not worst-case lab conditions.
  • Balance output power, threshold current, slope efficiency, SMSR, and linewidth across the full operating envelope - including temperature range and target wavelength window - for production laser devices (DFB, DBR, and related single-frequency architectures); design for specification compliance across all operating conditions, not only at nominal temperature and center wavelength.
  • Design and simulate electroabsorption modulator (EAM) structures - including quantum-confined Stark effect active regions, waveguide integration, and modulation bandwidth - for integrated and stand-alone modulator products; account for the interplay between absorber bias, extinction ratio, insertion loss, and chirp in the context of real driver circuit constraints.
  • Serve as the primary technical interface to epitaxy foundry partners: specify growth recipes, review and approve process travelers, evaluate growth run results, and drive resolution of material quality issues.
  • Define and execute epitaxial qualification protocols - photoluminescence (PL), X-ray diffraction (XRD), and surface scan (surfscan) metrology - and establish acceptance criteria for material qualification consistent with production requirements.
  • Collaborate with device layout, process engineering, FA, and systems teams to translate simulation results and device physics requirements into manufacturable designs; communicate findings through technical reports and design reviews.

Required Qualifications

  • Deep understanding of III-V semiconductor laser device physics - heterostructure theory, MQW active region design, optical waveguiding, and cavity design - with hands-on experience applying this knowledge to devices that have been fabricated and characterized, not only simulated.
  • Demonstrated experience simulating and designing laser photonic structures for real foundry implementation: waveguide modes, optical confinement, and grating design for DFB or DBR architectures - including how design margins are set to accommodate process variation and maintain yield targets.
  • Working knowledge of DFB and DBR laser design principles and the practical trade-offs between output power, threshold, slope efficiency, SMSR, and linewidth as they must be balanced across thermal operating conditions in production devices.
  • Experience with electroabsorption modulator device design - QCSE active region engineering, EAM integration, and modulation bandwidth optimization - for integrated and stand-alone modulator products.
  • Proficiency with commercial device simulation software used to support design decisions with production intent - including one or more of: traveling wave laser model tools (e.g., VPI Photonics, Lumerical INTERCONNECT, Photon Design HAROLD), waveguide and mode solvers (e.g., Ansys Lumerical MODE, Photon Design FIMMWAVE), grating/EME solvers, and band structure or gain simulation tools (e.g., Crosslight, SiLENSe, or equivalent); scripting in MATLAB or Python for simulation automation and data analysis.
  • Experience working with external epitaxy foundries: specifying growth recipes, reviewing characterization results, managing qualification cycles, and interpreting run-to-run variation in the context of product specifications.
  • Working knowledge of epi qualification metrology - photoluminescence spectroscopy, high[1]resolution XRD, and surface scan inspection - including interpretation of results and definition of acceptance criteria tied to device performance.

Preferred Qualifications

  • Practical experience with laser device characterization: LIV measurements, optical spectral analysis, linewidth, relative intensity noise (RIN), optical backscatter reflectometry (OBR), and gain measurement methods including Hakki-Paoli.
  • Hands-on characterization experience with integrated laser-modulator devices or stand-alone EAMs (extinction ratio, insertion loss, chirp, frequency response).
  • Experience defining technical specifications for III-V optical products that account for production distributions, driver circuit interoperability, and packaging or integration constraints.
  • Familiarity with optical communications standards and key link budget parameters (AOP, OMA, TDECQ, BER, coupling loss).
  • Hands-on experience with GDS mask design and layout generation for laser and modulator devices.
  • Exposure to failure analysis or reliability qualification methods as applied to III-V optical devices.

Education

Ph.D. in Electrical Engineering, Applied Physics, Materials Science, or a closely related discipline with emphasis in semiconductor photonics, optoelectronics, or III-V laser devices. Candidates with an M.S. or M.Eng. and a minimum of 6 years of directly relevant industry experience - including demonstrated device design ownership on products that reached production - will be considered.