Privacy Policy

This Privacy Policy describes the policies of Fellowsherpa, S. L., C/ José Bergamín 40, 8A, Madrid 28030, Spain, emails: david@fellowsherpa.com, thiago@fellowsherpa.com, on the collection, use and disclosure of your information that we collect when you use our website ( https://fellowsherpa.com ). (the “Service”). By accessing or using the Service, you are consenting to the collection, use and disclosure of your information in accordance with this Privacy Policy. If you do not consent to the same, please do not access or use the Service.

We may modify this Privacy Policy at any time without any prior notice to you and will post the revised Privacy Policy on the Service. The revised Policy will be effective 180 days from when the revised Policy is posted in the Service and your continued access or use of the Service after such time will constitute your acceptance of the revised Privacy Policy. We therefore recommend that you periodically review this page.

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The security of your information is important to us and we will use reasonable security measures to prevent the loss, misuse or unauthorized alteration of your information under our control. However, given the inherent risks, we cannot guarantee absolute security and consequently, we cannot ensure or warrant the security of any information you transmit to us and you do so at your own risk.

GRIEVANCE / DATA PROTECTION OFFICER:

If you have any queries or concerns about the processing of your information that is available with us, you may email our Grievance Officer at Fellowsherpa, S. L., C/ José Bergamín 40, 8A, emails: david@fellowsherpa.com, thiago@fellowsherpa.com. We will address your concerns in accordance with applicable law.

Uses and Misuses of of AI in Scientific Writing

Artificial intelligence tools are commonly used in scientific writing, sometimes with an incomplete understanding of the potential drawbacks, the limitations of the technology and the responsibility of the user. This workshop analyzes critically the guidelines and rules for the proper use of Artificial Intelligence tools in several aspects of scientific writing and evaluation: projects, original research manuscripts, literature reviews, fellowships & grant applications and peer-review. Through a problem-based learning approach, participants analyse recent cases drawn from the scientific literature, science policy, scientific journal guidelines, and rules put forward by funding agencies. The goal of the workshop is to guide students towards understanding the potential issues when using AI and establishing principles to navigate the fast-evolving ecosystem of AI research & writing tools.

Workshop details

The workshop is divided into four sections.

(1) Introduction to authorship in scientific manuscripts: trainers discuss criteria for responsible scientific authorship; principles of research integrity.

(2) Use of AI in scientific manuscript preparation workshop: participants work in groups analysing a set of problems in AI/LLM use cases in the generation of texts, images and data to build their own set of guidelines for responsible use of these tools.

(3) AI/LLM use in writing research projects: uses of AI/LLM tools in project design; handling of sensitive or confidential data; sections of applications most amenable to appropriate AI/LLM use; setting goals & generating hypothesis; using AI/LLM in review and evaluation; intellectual property considerations.

(4) Use of AI in funding applications: participants work in groups starting from problem sets related to project writing, fellowship applications, and collaborative projects to produce guidelines for the use of AI/LLM tools in funding calls.

Applying what they learned in the workshop, participants are asked to produce a full set of guidelines for responsible AI/LLM use in various aspects of scientific writing. The trainers compile the student work into a common guideline document, which includes also rules & recommendations from representative journals and funding agencies.

Duration: 8 classroom hours + 4 hours homework.

Number of participants: The course can accommodate up to 24 participants.

Target audience: PhD students, Postdocs.

Please contact us for further information. Prices and scheduling available on consultation.

Telling your Story: Writing a Narrative CV

Research funding agencies and recruiters are adopting new CV formats that incorporate narrative elements to offer scientists the possibility to explain a broader range of research achievements, including non-traditional outputs and work in areas such as mentorship, management or administration. This course teaches students how to build a narrative around their traditional “bullet point”-style CV. The value of identifying and highlighting achievements and skills in a narrative form goes beyond the narrative CV itself, as they prepare candidates to apply for a more diverse set of roles, as well as improve the writing of cover letters and performance in interviews both in and out of academic research.

Course details

The workshop is divided into four sections.

(1) Introduction to the narrative CV: DORA, CoARA, and the problem of research assessment; the rationale behind the adoption of narrative CVs; standard narrative CV formats.

(2) CV and cover letter workshop: in groups, participants identify the narrative elements in their CVs and cover letters; peer to peer storytelling exercises.

(3) Narrative CV formats: introduction to standard narrative CV templates, with a focus on the widely used UKRI template; narrative CV categories and their application to cover letters, interviews, and resumés.

(4) Narrative CV reception: strengths and weaknesses of narrative CVs; funding agency trends;
reviewer comments on narrative CV scoring; candidate comments from previous calls.

Participants provide their standard CV and a cover letter before the course. After the course, students are asked to provide a full version of their narrative CV to receive individual feedback.

Duration: the course is offered in two formats. A long format (1 day - 8 classroom hours) for early researchers and a short format (1/2 day – 4 classroom hours), usually for more senior scientists. The short version includes fewer practical exercises on account of the expected experience of the participants. In both cases, participants will need approximately 8 additional hours for homework.

Number of participants: The course can accommodate up to 24 participants.

Target audience: PhD students, Postdocs, Senior Researchers.

Please contact us for further information. Prices and scheduling available on consultation.