Using AI for Evidence Generation

A practical course on using AI in clinical and real-world evidence

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29 Oct and 5 Nov 2026

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Online and on location

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English

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9,200 DKK ex VAT
50% discount for public institutions i
You cannot combine different discounts and offers. See our terms and conditions for more information.

Summary

AI is changing how evidence is generated in life science. The real value comes from knowing how to apply AI in your everyday work.

In the course we will explore how AI can support evidence generation across the full clinical development lifecycle, from early research to real-world evidence, and where it fits alongside the studies you already run.

The course combines short presentations with hands-on work. You bring a real question or task from your own work, or work with a case we provide

By the end of the course, you will have hands-on experience using AI in your own work and a stronger foundation for assessing where it adds value in your evidence practice, and where you need to be cautious.


Key words

  • AI (Artificial Intelligence)
  • Clinical and real-world evidence
  • Evidence generation
  • Literature review
  • Target trial emulation
  • HTA evaluation

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Course leader & lecturers

  • Klaus Kaae Andersen
    Course leader
    Director & Senior Statistician
    Sanos

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Is this course for you?

  • Clinical development
  • Medical affairs
  • Regulatory affairs
  • Market access
  • Biostatisticians and Data scientists
  • Epidemiologists

What you will learn


  1. Where AI can support evidence generation across the clinical development lifecycle
  2. How AI can be used for literature review and evidence synthesis
  3. The limitations of AI tools, including fabricated references and misleading answers
  4. How AI can support analyses of real-world data and the development of evidence for HTA and reimbursement submissions
  5. How to apply AI to your own evidence-related questions

    What your company will get

    An employee who..

    1. Knows where AI supports evidence generation from phase I–IV
    2. Can use AI for literature review and evidence synthesis
    3. Knows the key limitations of using AI in evidence work
    4. Can strengthen HTA reimbursement submissions with AI-supported real-world evidence (Danish Medicines Council, NICE)
    5. Can assess when AI is a relevant tool in evidence work

      Course calendar

      Starting 29 Oct 2026
      29 Oct 2026 9:00-16:00
      Day 1
      • AI across the clinical development lifecycle (phase I-IV) and where RWE fits
      • Introduction to GDPR and responsible use of AI
      • AI for literature review and insights
      • AI for comparative effectiveness and causal RWE
      • Working on your own case: problem, output and group discussion

      Self-paced (approx. 2 hours, incl. exercises)

      • AI in trial design and external comparators
      • AI-supported RWE for HTA reimbursement

          5 Nov 2026 9:00-12:30
          Day 2: (Virtual Attendance)
          • Presentation and walkthrough of participants’ own cases
          • Feedback

                Practical information

                Registration

                Registration deadline
                22 Oct 2026
                Atrium
                Lersø Parkallé 101
                2100 København Ø
                Price
                9,200 DKK
                Register
                29 Oct - 5 Nov
                Please note: The programme structure may be subject to minor adjustments

                Course information

                Literature

                Before the course you will get access to recommended readings via your personal Atrium log-in

                Prerequisites

                Computer with access to a large language model (LLM), such as ChatGPT, Co-pilot, Claude

                Bring a real RWE question – a fictional case is available if needed.

                No programming experience or advanced statistical knowledge is required.

                Examination

                There is no examination for this course.

                Course leader

                Klaus Kaae Andersen
                Director & Senior Statistician
                Sanos

                Lecturer

                Klaus Kaae Andersen
                Director & Senior Statistician
                Sanos

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                Want to know more, or need help?

                Contact Client Manager Laura Enemark Skyum at

                +45 40 46 58 98 or lsk@atriumcph.com