Precision device inspector jobs in Finland
Precision device inspectors make sure precision devices, such as micrometers and gauges, operate according to design specifications. They may adjust the precision devices and their components in case of any faults.
Precision device inspector – how much is the pay in Finland?
What the trade paid in 2024
| Median | 19.44 €/h |
|---|---|
| Bottom tenth | 15.27 €/h |
| Top tenth | 24.86 €/h |
| Employees | 498 |
Pay by sex, 2024
| Sex | Median | Employees |
|---|---|---|
| Women | 18.81 €/h | 193 |
| Men | 20.07 €/h | 305 |
Precision device inspector - Which skills are essential?
The procedures to inspect a product or system to ensure that it is according to specifications and requirements.
Observe machine operations and evaluate product quality thereby ensuring conformity to standards.
Engineering discipline related to the fields of electrical engineering, electronics engineering, software engineering, optical engineering, and mechanical engineering that deals with the development of apparatus with very low tolerances.
Precision or fine mechanics is a subdiscipline in engineering that focuses on the design and development of smaller precision machines.
Read and interpret drawings listing all the parts and subassemblies of a certain product. The drawing identifies the different components and materials and provides instructions on how to assemble a product.
Identify operating problems, decide what to do about it and report accordingly.
Conduct inspections and tests of services, processes, or products to evaluate quality.
Read and comprehend standard blueprints, machine, and process drawings.
Communicate testing information such as testing schedules, samples testing statistics and test results, to the relevant departments.
The national and international requirements, specifications and guidelines to ensure that products, services and processes are of good quality and fit for purpose.
Ensure operative processes are finished at a previously agreed-upon time.
Maintain required company records and forms in order to report any defective materials or questionable conditions of manufacturing machinery and equipment.
Instruments used for precision measuring or manufacture, such as micrometers, calipers, gauges, scales, and microscopes.
Ensure that the assembled products are conform to the specifications given.
Precision device inspector - Which skills are useful but not essential?
Read and comprehend circuit diagrams showing the connections between the devices, such as power and signal connections.
Identify, report and repair equipment damage and malfunctions; communicate with field representatives and manufacturers to obtain repair and replacement components.
Measure voltage, current, resistance or other electrical characteristics by using electrical measuring equipment such as multimeters, voltmeters, and ammeters.
Remove defective materials from the production line.
Understand electrical engineering, a field of engineering that deals with the study and application of electricity, electronics, and electromagnetism.
Cross-disciplinary engineering which focuses on the miniaturisation of mechatronic systems.
Measure the size of a processed part when checking and marking it to check if it is up to standard by use of two and three dimensional precision measuring equipment such as a caliper, a micrometer, and a measuring gauge.
Microelectronics is a subdiscipline of electronics and relates the study, design, and manufacture of small electronic components, such as microchips.
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.
Examine the precision instruments and assess whether the instrument meets the quality standards and production specifications. Correct and adjust the reliability by measuring output and comparing results with the data of a reference device or a set of standardised results.
Elements that indicate or influence instrument performance. A first indication of the performance of the instrument is the accuracy or precision of the instrument, such as its response time, resolution, and range. A second indication of performance is the technical performance of the instrument, such as its power level, the electromagnetic interference, and transient voltages. A third indication of performance are environmental factors that can influence instrument performance, such as humidity, operating temperatures, or dust.
Know and understand the regulations and legal agreements governing the performance of waste removal activities.
Correct and adjust the reliability of an electronic instrument 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 and using calibration devices.
Computer processors on a microscale that integrate the computer central processing unit (CPU) on a single chip.
Research equipment or required machine parts; compare sources, prices and delivery times.
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.
Maintain equipment used for testing the quality of systems and products.
Discipline that applies principles of physics, engineering and materials science to design, analyse, manufacture and maintain mechanical systems.
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.
The design and production of micromechanisms. Micromechanisms combine mechanical and electrical components in a single device that is less than 1mm across.
Make sure that the measurable factors which define the operation of a system correspond to the predetermined norms.
Microelectromechanical systems (MEMS) are miniaturised electromechanical systems made using processes of microfabrication. MEMS consist of microsensors, microactuators, microstructures, and microelectronics. MEMS can be used in a range of appliances, such as ink jet printer heads, digital light processors, gyroscopes in smart phones, accelerometers for airbags, and miniature microphones.
Send equipment that didn't pass inspection back to the assembly line for re-assembly.
Maintain records of the progress of the work including time, defects, malfunctions, etc.
Write the results and conclusions of the inspection in a clear and intelligible way. Log the inspection's processes such as contact, outcome, and steps taken.
Operate machinery used for the making of small systems or components with a high level of precision.
Write records of the repairs and maintenance interventions undertaken, of parts and materials used, and other repair facts.
Read and comprehend blueprints and electrical diagrams; understand technical instructions and engineering manuals for assembling electrical equipment; understand electricity theory and electronic components.