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DRPS : Course Catalogue : School of Informatics : Informatics

Postgraduate Course: ML Systems Internship Research and Engagement Report (INFR11275)

Course Outline
SchoolSchool of Informatics CollegeCollege of Science and Engineering
Credit level (Normal year taken)SCQF Level 11 (Postgraduate)
Course typeDissertation AvailabilityNot available to visiting students
SCQF Credits30 ECTS Credits15
SummaryStudents will do an (approximately) 4 month internship with a company, or equivalent. Students will write up their experience of the internship in terms of the difference in emphasis between the needs and requirements of a general company environment, and the needs and requirements of a University research environment. They will consider their work on the PhD so far an elaborate on how it can be developed for broader impact, company interest and where starting with a demand-driven and market-driven perspective would lead.
Course description Students will do an (approximately) 4 month internship with a company, or alternative form of engagement with external partners, bodies or stakeholders. This course will involve a reflection and write up their experience of the internship in relation to the PhD study. The work will be a supervised self-study and reflection. Due to typical confidentiality arrangements, there is no expectation of a technical reflection on the content of the internship. Rather, it will be a reflection on the experience of the internship and the impact of that on research engagement.

The report will cover:
- Reflections on the difference in emphasis between the needs and requirements of a general company environment, and the needs and requirements of a University research environment
- Reflection on the downstream effects of these differences on the progress of work, the longer term impact, the dissemination and communication of the work etc.
- Reflection on the research work so far during the PhD, and company interest in that work can be enhanced, and where starting with a demand-driven and market-driven perspective would lead.
- Reflection on how to increase the impact of the PhD research so far, and the best approach to driving commercial and/or social use of the work in practical settings.
Entry Requirements (not applicable to Visiting Students)
Pre-requisites Co-requisites
Prohibited Combinations Other requirements CDT ML Systems students only.
Course Delivery Information
Not being delivered
Learning Outcomes
On completion of this course, the student will be able to:
  1. An ability to delineate the needs and requirement of research and corporate/other environments.
  2. An ability to reflect on research in the context of its broader impact.
  3. Clarity about what demands there are from stakeholders in the area of the PhD.
Reading List
None
Additional Information
Graduate Attributes and Skills Reflection:
This enhances students' capabilities in understanding the difference in needs across various sectors of society, reflecting on experience.

Direct Engagement with Stakeholders:
The internship will enable students to directly engage with relevant companies etc.

Personal Responsibility:
Students will arrange appropriate internships. They are responsible for their own work, and their work within the company.

Communication:
Students are required to submit a written report and communicate well.
KeywordsMachine Learning,Computer Systems
Contacts
Course organiserDr Amos Storkey
Tel: (0131 6)51 1208
Email: A.Storkey@ed.ac.uk
Course secretaryMs Lindsay Seal
Tel: (0131 6)50 5194
Email: lindsay.seal@ed.ac.uk
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