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Robotics engineer jobs in Finland

Robotics engineers design and develop robotic devices and applications in combination with mechanical engineering principles. They use pre-established designs and current developments for improving or inventing systems, machinery and equipment. They combine several knowledge fields such as computing, engineering, and electronics in the development of new engineering applications.

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Robotics engineer - Which skills are essential?

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

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

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.

Drawing software and the various symbols, perspectives, units of measurement, notation systems, visual styles and page layouts used in technical drawings.

The systematic approach to the development and maintenance of engineering systems.

The components that can be found in robotic systems, such as microprocessors, electronics, sensors, circuit boards, encoders, servomotors, controllers, pneumatics or hydraulics.

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

Perform the evaluation and assessment of the potential of a project, plan, proposition or new idea. Realise a standardised study which is based on extensive investigation and research to support the process of decision making.

The branch of engineering that involves the design, operation, manufacture, and application of robots. Robotics is part of mechanical engineering, electrical engineering, and computer science and overlaps with mechatronics and automation engineering.

Revise and analyse financial information and requirements of projects such as their budget appraisal, expected turnover, and risk assessment for determining the benefits and costs of the project. Assess if the agreement or project will redeem its investment, and whether the potential profit is worth the financial risk.

Theoretical and practical applications of the science studying the action of displacements and forces on physical bodies to the development of machinery and mechanical devices.

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

Design engineering parts, assemblies, products, or systems that contribute to the automation of industrial machines.

Robotics engineer - Which skills are useful but not essential?

Keep up to date with digital innovations applicable to industrial processes. Integrate these transformations in the company's processes aiming for competitive and profitable business models.

Repair computer code by analysing testing results, locating the defects causing the software to output an incorrect or unexpected result and removing these faults.

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 steps required through which a material is transformed into a product, its development and full-scale manufacturing.

Transpose a series of requirements into a clear and organised software design.

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

Perform tests putting a system, machine, tool or other equipment through a series of actions under actual operating conditions in order to assess its reliability and suitability to realise its tasks, and adjust settings accordingly.

The elements used in design such as unity, scale, proportion, balance, symmetry, space, form, texture, colour, light, shade and congruence and their application into practice.

Improve production rates, efficiencies, yields, costs, and changeovers of products and processes by using relevant advanced, innovative, and cutting edge technology.

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

Correct and adjust the reliability of an mechatronic 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.

Test mechatronic units using appropriate equipment. Gather and analyse data. Monitor and evaluate system performance and take action if needed.

Diagnose and detect malfunctions in robotic components and systems and remove, replace, or repair these components when necessary. Execute preventative equipment maintenance tasks, such as storing robotic components 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.

Assemble robotic machines, devices, and components according to engineering drawings. Program and install the necessary components of robotic systems, such as robot controllers, conveyors, and end-of-arm tools.

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

Abide by safety procedures and standards for industrial contexts, mostly where machinery is involved.

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.

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

Offer help and advice to service technicians in case of machine malfunctions and other repair tasks.

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.

Simulate mechatronic design concepts through creating mechanical models and performing tolerance analysis.

The field of engineering concerned with the development, improvement, and implementation of complex processes and systems of knowledge, people, equipment, etc.

List the design specifications such as materials and parts to be used and a cost estimate.

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

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

Conduct experimental, environmental and operational tests on models, prototypes or on the systems and equipment itself in order to test their strength and capabilities under normal and extreme conditions.

The engineering discipline used to ensure that systems, machines and equipment work according to the set safety standards and laws, such as environmental law.

Multidisciplinary field of engineering that combines principles of electrical engineering, telecommunications engineering, control engineering, computer engineering, and mechanical engineering in the design of products and manufacturing processes. The combination of these areas of engineering allows for the design and development of "smart" devices and the achievement of an optimal balance between mechanical structure and control.

Assemble mechatronic units using mechanical, pneumatic, hydraulic, electrical, electronic, and information technology systems and components. Manipulate and attach metals through using welding and soldering techniques, glue, screws, and rivets. Install wiring. Install drive systems, sensors, actuators, and transducers. Mount switches, control devices, coverings, and protection.

The use of software to track all information concerning a product such as technical specifications, drawings, design specifications, and production costs.

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

Plan, coordinate, and direct all production activities to insure the goods are made on time, in correct order, of adequate quality and composition, starting from intake goods up to shipping.

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Sources

This service uses the ESCO classification of the European Commission.

How we calculated these figures