Master of Advanced Engineering Specialisation in Robotics Engineering

2 Years On Campus Masters Program

Monash University

Program Overview

The Master of Advanced Engineering Specialisation in Robotics Engineering at Monash University is a 2-year full-time postgraduate degree designed for engineering graduates seeking advanced expertise in robotics, automation, artificial intelligence, and intelligent engineering systems.

Curriculum Structure:

In the first year, students develop advanced knowledge in robotics, automation, mechatronics, control systems, machine learning, computer vision, and engineering systems.

In the second year, students apply their knowledge through advanced robotics studies, practical engineering projects, research, and specialised technical learning, strengthening their professional and problem-solving capabilities.

Focus Areas: Robotics, Automation, Mechatronics, Control Systems, Artificial Intelligence, Machine Learning, Computer Vision, Autonomous Systems, Human-Robot Interaction, and Robotic Systems.

Learning Outcomes: Design and develop advanced robotic systems, integrate mechanical and electronic components, develop autonomous systems, apply AI and machine learning, use computer vision and sensing technologies, and address ethical and safety considerations.

Professional Alignment (Accreditation): The program is designed for engineering graduates seeking to specialise in robotics and automation and develop advanced technical and research capabilities.

Reputation (Employability): The program provides hands-on practical experience and prepares graduates for robotics applications across manufacturing, logistics, agriculture, healthcare, environmental monitoring, and other industries.

Experiential Learning (Research, Projects, Internships etc.)

At Monash University, the Master of Advanced Engineering with a Specialisation in Robotics Engineering offers students a unique opportunity to gain hands-on experience and practical skills that are essential in today’s rapidly evolving engineering landscape. The program is designed to bridge the gap between theoretical knowledge and real-world application, ensuring that you are well-prepared for a successful career in robotics.

Students benefit from state-of-the-art facilities and cutting-edge tools that enhance their learning experience. The program emphasizes experiential learning through various avenues, including collaborative projects, internships, and access to specialized laboratories. Here’s what you can expect:

- Robotics and Automation Lab: A dedicated space equipped with advanced robotics systems, allowing students to work on real-world projects and experiments.
- Collaborative Group Projects: Engage in team-based projects that simulate industry scenarios, fostering teamwork and problem-solving skills.
- Internship Opportunities: Gain valuable industry experience through internships with leading companies in the robotics field, enhancing your employability.
- Software Tools: Access to industry-standard software such as MATLAB, SolidWorks, and ROS (Robot Operating System) for designing and programming robotic systems.
- Field Trips: Participate in excursions to robotics companies and research institutes, providing insights into the latest industry trends and technologies.
- Research Facilities: Utilize Monash’s extensive research facilities, including the Monash Institute of Medical Engineering, which focuses on innovative applications of robotics in healthcare.
- Library Resources: Benefit from access to comprehensive library resources, including databases and journals specific to engineering and robotics research.

Progression & Future Opportunities

The Master of Advanced Engineering Specialisation in Robotics Engineering at Monash University equips graduates with the skills and knowledge to excel in a rapidly evolving field. Graduates can pursue exciting career opportunities such as Robotics Engineer, Automation Specialist, Research and Development Engineer, and Systems Engineer. With the increasing demand for robotics in various industries, this program positions you for a successful and fulfilling career:

 

- University Services: Monash offers dedicated career services, including resume workshops, interview preparation, and networking events with industry professionals to help you secure employment.
- Employment Stats and Salary Figures: Graduates from the engineering faculty have a high employment rate, with many securing roles shortly after graduation. The average starting salary for engineering graduates is competitive, often exceeding $80,000 per year.
- University–Industry Partnerships: Monash has strong collaborations with leading companies in the robotics sector, such as Siemens and Bosch, providing students with opportunities for internships and real-world projects.
- Long-term Accreditation Value: The program is accredited by Engineers Australia, ensuring that your qualification is recognized both nationally and internationally, enhancing your employability.
- Graduation Outcomes: Alumni of the program have gone on to work in prestigious organizations and have made significant contributions to the field of robotics, showcasing the program's effectiveness in preparing students for the workforce.

Further Academic Progression: After completing the Master of Advanced Engineering Specialisation in Robotics Engineering, you may choose to pursue a PhD in Robotics or a related field. This path allows you to engage in advanced research, contribute to innovative projects, and further enhance your expertise, opening doors to academic positions or high-level industry roles.

Program Key Stats

$57,900
$49,300
$125
Rolling


No
Yes

Eligibility Criteria

NA
4 Years

NA
NA
NA
6.5
79
NA

Additional Information & Requirements

Country Requirements

Career Options

  • Develop an integrated robotic system for industrial automation
  • incorporating vision systems and machine learning for tasks in manufacturing and logistics
  • Lead a project involving the coordination of a swarm of robots for environmental monitoring or underwater exploration
  • Design robotic prosthetics to enhance the mobility and function for people with limb dysfunctions
  • Work on the development of robotic systems for precision agriculture
  • including autonomous tractors
  • robotic harvesters
  • or drones for crop monitoring
  • Contribute to the development of a robotic surgery platform
  • integrating advanced sensing technologies and precise control mechanisms

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