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Optoelectronic engineering technician jobs in Finland

Optoelectronic engineering technicians collaborate with engineers in the development of optoelectronic systems and components, such as photodiodes, optical sensors, lasers and LED's. Optoelectronic engineering technicians build, test, install and calibrate optoelectronic equipment. They read blueprint and other technical drawings to develop testing and calibrating procedures.

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Optoelectronic engineering technician - Which skills are essential?

Read and comprehend circuit diagrams showing the connections between the devices, such as power and signal connections.

The national and international quality and safety standards and regulations with regards to the use and manufacture of optical equipment, including optical materials, optical components, optical systems, ophthalmic equipment, optomechanical equipment, optical measuring equipment, photographic equipment, and optoelectronic equipment.

The characteristics of optical glass such as refractive index, dispersion, and chemical properties.

The national and international quality and safety standards and regulations with regards to the use and manufacture of electronic equipment and its components, such as semiconductors and printed circuit boards.

Use various techniques to ensure the product quality is respecting the quality standards and specifications. Oversee defects, packaging and sendbacks of products to different production departments.

Test optical systems, products, and components with appropriate optical testing methods, such as axial ray testing and oblique ray testing.

Record data which has been identified specifically during preceding tests in order to verify that outputs of the test produce specific results or to review the reaction of the subject under exceptional or unusual input.

The science that studies the elements and reaction of light.

Possess information on the types of optical instruments and lenses, such as microscopes and telescopes, as well as on their mechanics, components, and characteristics.

Understand design drawings detailing the design of products, tools, and engineering systems.

Adjust designs of products or parts of products so that they meet requirements.

Align and lay out components in order to put them together correctly according to blueprints and technical plans.

Refractive power or optical power is the degree to which an optical system, such as a lens, converges or diverges light. Diverging lenses possess negative refractive power, while converging lenses possess positive refractive power.

Apply coating to optical lenses, such as reflective coating to mirrors, anti-reflective coatings to camera lenses, or tinted coatings to sunglasses.

Test optoelectronic systems, products, and components using electronic, optic, and photonic testing and measuring equipment.

The functioning of electronic circuit boards, processors, chips, and computer hardware and software, including programming and applications. Apply this knowledge to ensure electronic equipment runs smoothly.

Subdiscipline of engineering that deals with the development of optical instruments and applications, such as telescopes, microscopes, lenses, lasers, fibre optic communication, and imaging systems.

The components and materials necessary for building optical instruments, such as lenses and frames.

The process and different stages of manufacturing an optical product, from design and prototyping to the preparation of optical components and lenses, the assembly of optical equipment, and the intermediate and final testing of the optical products and its components.

Read the technical drawings of a product made by the engineer in order to suggest improvements, make models of the product or operate it.

Clean optical components after every cycle in the manufacturing process.

Electronic devices, systems, and components that possess optical features. These devices or components may include electrically driven light sources, such as LEDs and laser diodes, components that can convert light into electricity, such as solar or photovoltaic cells, or devices that can electronically manipulate and control light.

Collaborate with engineers to ensure common understanding and discuss product design, development and improvement.

Fasten components together according to blueprints and technical plans in order to create subassemblies or finished products.

Assist engineers or scientists with conducting experiments, performing analysis, developing new products or processes, constructing theory, and quality control.

Prepare, construct, and assemble optoelectronic components and systems, such as lasers and imaging systems, using soldering, micro-fabrication, and polishing techniques.

Branch of electronics and optics dedicated to the study and use of electronic devices that detect and control light.

Set up and operate optical processing or assembly equipment, such as optical spectrum analysers, power saws, lasers, die bonders, soldering irons, and wire bonders.

Prepare early models or prototypes in order to test concepts and replicability possibilities. Create prototypes to assess for pre-production tests.

Optoelectronic engineering technician - Which skills are useful but not essential?

Wear garments appropriate for environments that require a high level of cleanliness to control the level of contamination.

Apply and work with a variety of techniques in the process of soldering, such as soft soldering, silver soldering, induction soldering, resistance soldering, pipe soldering, mechanical and aluminium soldering.

Observe machine operations and evaluate product quality thereby ensuring conformity to standards.

Identify, report and repair equipment damage and malfunctions; communicate with field representatives and manufacturers to obtain repair and replacement components.

Operate and use soldering tools and soldering iron, which supply high temperatures to melt the solder and to join electronic components.

Devices which combine mechanical and optical properties, such as precision mirror mounts used in the construction of lasers, optical mounts used in the manufacture of cameras, and optical tables used for optics experiments and engineering.

Correct and adjust the reliability of optical instruments, such as photometers, polarimeters, and spectrometers, by measuring output and comparing results with the data of a reference device or a set of standardised results. This is done in regular intervals which are set by the manufacturer.

Microelectronics is a subdiscipline of electronics and relates the study, design, and manufacture of small electronic components, such as microchips.

Firmware is a software program with a read-only memory (ROM) and a set of instructions that is permanently inscribed on a hardware device. Firmware is commonly used in electronic systems such as computers, mobile phones, and digital cameras.

Types of sensors used in digital cameras, such as charged coupled devices (CCD) and complementary metal oxide semiconductor sensors (CMOS).

Micro-opto-electro-mechanics (MOEM) combines microelectronics, microoptics and micromechanics in the development of MEM devices with optical features, such as optical switches, optical cross-connects, and microbolometers.

Printed circuit boards (PCB) are essential components to almost all electronic devices. They consist of thin wafers or substrates on which electronic components, such as microchips, are placed. The electronic components are electrically connected through conductive tracks and pads.

Sensors are transducers that can detect or sense characteristics in their environment. They detect changes in the apparatus or environment and provide a corresponding optical or electrical signal. Sensors are commonly divided in six classes: mechanical, electronic, thermal, magnetic, electrochemical, and optical sensors.

Diagnose and detect malfunctions in optical systems, such as lasers, microscopes, and oscilloscopes. Remove, replace, or repair these systems or system components when necessary. Execute preventative equipment maintenance tasks, such as storing the equipment in clean, dust-free, and non-humid spaces.

Use computer-aided manufacturing (CAM) programmes to control machinery and machine tools in the creation, modification, analysis, or optimisation as part of the manufacturing processes of workpieces.

The software to perform computer-aided engineering (CAE) analysis tasks such as Finite Element Analysis and Computional Fluid Dynamics.

Computer processors on a microscale that integrate the computer central processing unit (CPU) on a single chip.

Assist with the integration of new systems, products, methods, and components in the production line. Ensure that production workers are properly trained and follow the new requirements.

Compose technical customer reports understandable for people without technical background.

The computer-aided design (CAD) software for creating, modifying, analysing or optimising a design.

Check optical materials for damage, such as scratches, before using the material.

Use electronic, mechanical, electric, or optical precision tools for precision work.

Optical devices with a size of 1 millimeter or smaller, such as microlenses and micromirrors.

Explain technical details to non-technical customers, stakeholders, or any other interested parties in a clear and concise manner.

The different electromagnetic wavelenghts or frequencies that are situated on the electromagnetic spectrum. Wavelenghts are divided in several categories according to their wavelength and energy level, starting from radio wavelenghts with a long wavelength and a low energy level, to microwaves, infrared, visible light, ultraviolet, X-rays, and finally Gamma-rays with a short wavelength and a high energy level.

Maintain records of the progress of the work including time, defects, malfunctions, etc.

Program permanent software with a read-only memory (ROM) on a hardware device, such as an integrated circuit.

Operate machinery used for the making of small systems or components with a high level of precision.

Semiconductors are essential components of electronic circuits and contain properties of both insulators, such as glass, and conductors, such as copper. Most semiconductors are crystals made of silicon or germanium. By introducing other elements in the crystal through doping, the crystals turn into semiconductors. Depending on the amount of electrons created by the doping process, the crystals turn into N-type semiconductors, or P-type semiconductors.

Devices with a size smaller than 1 mm that can convert a non-electric signal, such as temperature, into an electrical signal. Because of their size, microsensors offer better accuracy, range, and sensitivity compared to larger sensors.

Devices that are able to produce light through the optical amplification of the stimulated emission of electromagnetic radiation, such as gas lasers, solid-state lasers, fiber lasers, photonic lasers and semiconductor lasers. The spatial and temporal coherence of lasers allows for the concentration of light in one place, such as laser pointers, as well as the concentration of light in time, so that light can be produced in a much shorter time than other light and can also emit as single colour of light.

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Sources

This service uses the ESCO classification of the European Commission.

How we calculated these figures