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Moving beyond
proofs of concept for
biomedical AI
PAUL AGAPOW
STATISTICS & DATA SCIENCE INNOVATION, GSK
FESTIVAL OF GENOMICS JANUARY 2022
Or …
The vast gulf
between the
promise and
practice of AI
in medicine
Obligatory disclosure
◦ About myself:
◦ Currently Statistics & Data Science Innovation @GSK
◦ Health Informatics / Oncology ML&AI @AZ
◦ Data Science Institute @ICL
◦ Bioinformatics @Health Protection Agency UK
◦ Does not reflect any current or past projects at any of the above
◦ Solely my opinion
◦ No conflicts of interest
Why do so many ML/AI systems
that promise improvements to
healthcare & medicine fail to
deliver on that promise?
THE PROBLEM
We live in an
age of wonders
Fungible & powerful computation
together with powerful AI
techniques working on a mountain
of high-throughput biological data
promise to revolutionize drug
development & healthcare
10 June 2021
6
“AI will not replace
drug hunters, but drug
hunters who don’t use
AI will be replaced by
those who do.”
-Andrew Hopkins, CEO Exscientia
7
Just when we
needed it, AI
failed us
Of 232 models for COVID
diagnosis / prognosis / prediction,
only 2 held any promise for actual
clinical application …
Wynants et al. (2020) Prediction models for diagnosis and prognosis of covid-19:
systematic review and critical appraisal. BMJ
Every bad
model has
exacts a cost
Excuses
“It takes time …”
“We need to use
<ML/AI
APPROACH> …”
“We need more
powerful
computation …”
“We need to attract
more computer
scientists and AI
experts to the field
…”
“We need more
data …”
“Computers will
never understand
biology …”
ML/AI in medicine is performed by
many different types of people with
different knowledge, different skills
and different goals, leading to
misalignment between research & the
clinic
A PROPOSED DIAGNOSIS
We work on
the wrong
problems
“I don’t need 100
new drug
candidates, I
need 5 good
ones”
The data isn’t
right
• “Big Data” is a problem
• A paucity of large, labelled datasets
• Frankenstein datasets (c.v. Christoph Molnar)
• Bias and selection cooked in
• Often lack data on crucial issues
•Advances will often be limited by biological knowledge …
12 July 2021 15
Biology is complicated
About 50 trillion cells of 200 types
Each cell has 23 pairs of chromosomes
In total 6.4 billion basepairs (positions)
Organised into about 18,000 genes
(Or maybe more like 40,000 genes)
Genetic material elsewhere in the cell
Epigenetic modification
1 million different types of molecules
Lifestyle & history
Exposure & environment
Immune system repertoire & priming
…
Of which we know only a fraction
We might not
understand what
the system is
doing
The wolf-husky problem – are we just building “snow
detectors”
Does a patient have a right to know why a medical
decision was made?
Algorithms have frequently been shown to be biased
Thus explainability / interpretability
◦ As a smoke test
◦ But interpretability is not straightforward
There are few
incentives for
writing good
software …
•Software engineering is still under-valued in academia.
“Research” software is often unsuitable for real world use
•Software in the clinic needs to be robust, reliable and regulated
• Writing software to that quality is non-trivial
•If a result cannot be reproduced, did it ever really work?
… let alone
clinically
useful AI
•Well-know pressure in academia for novel results
• Doubly so in AI, focus on novel methods on standard problems
•Desire to “do something”
•Difficult to get biologists & informaticians collaborating
• “Every time I fire a linguist, the accuracy of my NLP models
improves”
“The proposed solutions are never
intended to be applied directly”
We may be
running a
massive multiple
hypothesis test
Consider:
• Maybe millions of researchers working on similar problems
• Using different approaches and assumptions
• Using different data, processed differently
• Using different software stacks
• Using different tunings & hyper-parameters on these models
• Throwing out models that “don’t work”
How many results may be due to simple chance?
So what do we
do?
•Broad validation is a non-negotiable
•Likewise, reproducibility
•And interpretability?
•Need collaborating experts
• In biology
• In software and programming
•Focus on incremental improvement of models
•Distrust accuracy metrics
•Accept that nothing ever works as well in the real-world
•Does the model solve a useful problem? If it works,
what will you do?
•As always, we need more of the right sort of data
Come along to …
Vibhor Gupta (PangaeaAI) and myself leading a
discussion (later today?)
Towards the Industrial Use of AI in Biotech &
Medicine
Looking for a job?
https://www.gsk.com/en-gb/careers/

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Beyond Proofs of Concept for Biomedical AI

  • 1. Moving beyond proofs of concept for biomedical AI PAUL AGAPOW STATISTICS & DATA SCIENCE INNOVATION, GSK FESTIVAL OF GENOMICS JANUARY 2022
  • 2. Or … The vast gulf between the promise and practice of AI in medicine
  • 3. Obligatory disclosure ◦ About myself: ◦ Currently Statistics & Data Science Innovation @GSK ◦ Health Informatics / Oncology ML&AI @AZ ◦ Data Science Institute @ICL ◦ Bioinformatics @Health Protection Agency UK ◦ Does not reflect any current or past projects at any of the above ◦ Solely my opinion ◦ No conflicts of interest
  • 4. Why do so many ML/AI systems that promise improvements to healthcare & medicine fail to deliver on that promise? THE PROBLEM
  • 5. We live in an age of wonders Fungible & powerful computation together with powerful AI techniques working on a mountain of high-throughput biological data promise to revolutionize drug development & healthcare
  • 6. 10 June 2021 6 “AI will not replace drug hunters, but drug hunters who don’t use AI will be replaced by those who do.” -Andrew Hopkins, CEO Exscientia
  • 7. 7
  • 8. Just when we needed it, AI failed us Of 232 models for COVID diagnosis / prognosis / prediction, only 2 held any promise for actual clinical application … Wynants et al. (2020) Prediction models for diagnosis and prognosis of covid-19: systematic review and critical appraisal. BMJ
  • 10. Excuses “It takes time …” “We need to use <ML/AI APPROACH> …” “We need more powerful computation …” “We need to attract more computer scientists and AI experts to the field …” “We need more data …” “Computers will never understand biology …”
  • 11. ML/AI in medicine is performed by many different types of people with different knowledge, different skills and different goals, leading to misalignment between research & the clinic A PROPOSED DIAGNOSIS
  • 12. We work on the wrong problems
  • 13. “I don’t need 100 new drug candidates, I need 5 good ones”
  • 14. The data isn’t right • “Big Data” is a problem • A paucity of large, labelled datasets • Frankenstein datasets (c.v. Christoph Molnar) • Bias and selection cooked in • Often lack data on crucial issues •Advances will often be limited by biological knowledge …
  • 15. 12 July 2021 15 Biology is complicated About 50 trillion cells of 200 types Each cell has 23 pairs of chromosomes In total 6.4 billion basepairs (positions) Organised into about 18,000 genes (Or maybe more like 40,000 genes) Genetic material elsewhere in the cell Epigenetic modification 1 million different types of molecules Lifestyle & history Exposure & environment Immune system repertoire & priming … Of which we know only a fraction
  • 16. We might not understand what the system is doing The wolf-husky problem – are we just building “snow detectors” Does a patient have a right to know why a medical decision was made? Algorithms have frequently been shown to be biased Thus explainability / interpretability ◦ As a smoke test ◦ But interpretability is not straightforward
  • 17. There are few incentives for writing good software … •Software engineering is still under-valued in academia. “Research” software is often unsuitable for real world use •Software in the clinic needs to be robust, reliable and regulated • Writing software to that quality is non-trivial •If a result cannot be reproduced, did it ever really work?
  • 18. … let alone clinically useful AI •Well-know pressure in academia for novel results • Doubly so in AI, focus on novel methods on standard problems •Desire to “do something” •Difficult to get biologists & informaticians collaborating • “Every time I fire a linguist, the accuracy of my NLP models improves” “The proposed solutions are never intended to be applied directly”
  • 19. We may be running a massive multiple hypothesis test Consider: • Maybe millions of researchers working on similar problems • Using different approaches and assumptions • Using different data, processed differently • Using different software stacks • Using different tunings & hyper-parameters on these models • Throwing out models that “don’t work” How many results may be due to simple chance?
  • 20. So what do we do? •Broad validation is a non-negotiable •Likewise, reproducibility •And interpretability? •Need collaborating experts • In biology • In software and programming •Focus on incremental improvement of models •Distrust accuracy metrics •Accept that nothing ever works as well in the real-world •Does the model solve a useful problem? If it works, what will you do? •As always, we need more of the right sort of data
  • 21. Come along to … Vibhor Gupta (PangaeaAI) and myself leading a discussion (later today?) Towards the Industrial Use of AI in Biotech & Medicine
  • 22. Looking for a job? https://www.gsk.com/en-gb/careers/