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Microsystem engineer jobs in Finland

Microsystem engineers research, design, develop, and supervise the production of microelectromechanical systems (MEMS), which can be integrated in mechanical, optical, acoustic, and electronic products.

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Microsystem engineer - Which skills are essential?

Conduct a comprehensive and systematic research of information and publications on a specific topic. Present a comparative evaluative literature summary.

Electricity is created when electric current flows along a conductor. It entails the movement of free electrons between atoms. The more free electrons are present in a material, the better this material conducts. The three main parameters of electricity are the voltage, current (ampère), and resistance (ohm).

The engineering elements like functionality, replicability, and costs in relation to the design and how they are applied in the completion of engineering projects.

Test microelectromechanical systems (MEMS) using appropriate equipment and testing techniques, such as thermal shock tests, thermal cycling tests, and burn-in tests. Monitor and evaluate system performance and take action if needed.

Collect data and statistics to test and evaluate in order to generate assertions and pattern predictions, with the aim of discovering useful information in a decision-making process.

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.

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

Understand electrical engineering, a field of engineering that deals with the study and application of electricity, electronics, and electromagnetism.

Conduct inspections and tests of services, processes, or products to evaluate quality.

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

Mathematics is the study of topics such as quantity, structure, space, and change. It involves the identification of patterns and formulating new conjectures based on them. Mathematicians strive to prove the truth or falsity of these conjectures. There are many fields of mathematics, some of which are widely used for practical applications.

The methods of testing the quality, accuracy, and performance of microsystems and microelectromechanical systems (MEMS) and their materials and components before, during, and after the building of the systems, such as parametric tests and burn-in tests.

Gain, correct or improve knowledge about phenomena by using scientific methods and techniques, based on empirical or measurable observations.

Create technical designs and technical drawings using specialised software.

The natural science involving the study of matter, motion, energy, force and related notions.

The environmental policies and legislation applicable in a certain domain.

Interpret and analyse data collected during testing in order to formulate conclusions, new insights or solutions.

The threats for the environment which are related to biological, chemical, nuclear, radiological, and physical hazards.

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.

Discipline that applies principles of physics, engineering and materials science to design, analyse, manufacture and maintain mechanical systems.

The assembly of nano, micro or mesoscale systems and components with dimensions between 1 µm to 1 mm. Because of the need for precision on a microscale, micro assemblies require reliable visual alignment equipment, such as ion beam imaging systems and stereo electronic microscopes, as well as precision tools and machines, such as microgrippers. The microsystems are assembled according to techniques of doping, thin films, etching, bonding, microlithography, and polishing.

Develop testing protocols, such as parametric tests and burn-in tests, to enable a variety of analyses of microelectromechanical (MEM) systems, products, and components before, during, and after the building of the microsystem.

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

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.

Design prototypes of products or components of products by applying design and engineering principles.

Design and develop microelectromechanical systems (MEMS), such as microsensing devices. Make a model and a simulation using technical design software to assess the viability of the product and examine the physical parameters to ensure a successful production process.

Comply with regulations banning heavy metals in solder, flame retardants in plastics, and phthalate plasticisers in plastics and wiring harness insulations, under EU RoHS/WEEE Directives and China RoHS legislation.

Produce research documents or give presentations to report the results of a conducted research and analysis project, indicating the analysis procedures and methods which led to the results, as well as potential interpretations of the results.

Understand the principles of electricity and electrical power circuits, as well as the associated risks.

Operate devices, machinery, and equipment designed for scientific measurement. Scientific equipment consists of specialised measuring instruments refined to facilitate the acquisition of data.

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

Give consent to the finished engineering design to go over to the actual manufacturing and assembly of the product.

Microsystem engineer - Which skills are useful but not essential?

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

Prepare documentation for existing and upcoming products or services, describing their functionality and composition in such a way that it is understandable for a wide audience without technical background and compliant with defined requirements and standards. Keep documentation up to date.

Respond to and communicate with customers in the most efficient and appropriate manner to enable them to access the desired products or services, or any other help they may require.

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.

Build microelectromechanical systems (MEMS) using microscopes, tweezers, or pick-and-place robots. Slice substrates from single wafers and bond components onto the wafer surface through soldering and bonding techniques, such as eutectic soldering and silicon fusion bonding (SFB). Bond the wires through special wire bonding techniques such as thermocompression bonding, and hermetically seal the system or device through mechanical sealing techniques or micro shells. Seal and encapsulate the MEMS in vacuum.

Precision or fine mechanics is a subdiscipline in engineering that focuses on the design and development of smaller precision machines.

Define and describe the criteria by which data quality is measured for manufacturing purposes, such as international standards and manufacturing regulations.

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.

Create detailed technical plans of machinery, equipment, tools and other products.

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.

Programmable logic controllers or PLC's are computer control systems used for the monitoring and control of input and output as well as the automation of electromechanical processes.

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.

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.

Plan, coordinate and supervise engineering activities together with engineers and engineering technicians. Ensure clear and effective channels of communication across all departments. Make sure the team is aware of the standards and objectives of the research and development.

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

Engineering discipline that combines computer science with electrical engineering to develop computer hardware and software. Computer engineering occupies itself with electronics, software design, and the integration of hardware and software.

The national and international requirements, specifications and guidelines to ensure that products, services and processes are of good quality and fit for purpose.

Technologies, science, and engineering activities conducted on a nanoscale, where material or extremely small components are manipulated on an atomic, molecular, or supramolecular scale.

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.

Set up a list of materials, components, and assemblies as well as the quantities needed to manufacture a certain product.

The design and production of micromechanisms. Micromechanisms combine mechanical and electrical components in a single device that is less than 1mm across.

Use computer-aided design (CAD) systems to assist in the creation, modification, analysis, or optimisation of a design.

Instruments used for precision measuring or manufacture, such as micrometers, calipers, gauges, scales, and microscopes.

Subdiscipline of engineering that focuses on controlling the behaviour of systems through the use of sensors and actuators.

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

Manage and plan various resources, such as human resources, budget, deadline, results, and quality necessary for a specific project, and monitor the project's progress in order to achieve a specific goal within a set time and budget.

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.

The biomedical engineering processes used to create medical devices, prostheses and in treatments.

Establish a positive, long-term relationship between organisations and interested third parties such as suppliers, distributors, shareholders and other stakeholders in order to inform them of the organisation and its objectives.

Observe principles in keeping an engineering watch. Take over, accept and hand over a watch. Perform routine duties undertaken during a watch. Maintain the machinery space logs and the significance of the readings taken. Observe safety and emergency procedures. Observe safety precautions during a watch and take immediate actions in the event of fire or accident, with particular reference to oil systems.

Lead and guide employees through a process in which they are taught the necessary skills for the perspective job. Organise activities aimed at introducing the work and systems or improving the performance of individuals and groups in organisational settings.

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.

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

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.

Handle orders placed by customers. Receive the customer order and define a list of requirements, a working process, and a time frame. Execute the work as planned.

Create the drawings that identify the different components and materials, and that provide instructions as to how they should be assembled.

Set of technologies that make a process, system, or apparatus operate automatically through the use of control systems.

Estimate the expected input in terms of time, human and financial resources necessary to achieve the project objectives.

Convert market requirements into product design and development.

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Sources

This service uses the ESCO classification of the European Commission.

How we calculated these figures