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Chris Madsen
Co-Founder and CEO
Aegon Blue Square Re
https://www.aegon.com/about/Aegon-Blue-Square-Re-NV/
A view on AI in
Insurance
Cost of sensors are decreasing and data availability increasing
Driving an inflection point for change in insurance
Time
Cost
SensorsInflection zone
Insurtech has emerged
Level of Interest in Insurtech over time
Compared with Biotech and Fintech
Source: Google Trends Source: Venture Scanner
International Trends
Though still relatively nascent
Insurance is increasingly personalized and data driven
CONNECTED CAR
driving style, speeding,
Braking, fuel savings,
Maintenance, e-call
CONNECTED LIFE
daily activity, diet,
sleep, stress
CONNECTED
FINANCE
pension, investments,
savings, payments
CONNECTED HOME
Smoke alarm, water leaks,
burglary
International Trends
Devices are getting smarter & software & platforms follow
Thousands of healthcare, fitness, medical apps
* Tends to be significantly higher for chronic conditions such as diabetes
As a result, the role of insurance changes
Helping you when bad
things happen
Helping you prevent bad things from
happening, but when they do, we
will help you manage
Price =
Expected claims +
Loading for Risk* +
Loading for Expense
Expected claims: can be lowered through active engagement
Loading for Risk: can be lowered by more frequent touch-
points as long as pricing can vary
Loading for Expense: The greater the automation, the lower
the expense
And the insurance value chain along with it
Claims
Product
Development
Operations &
Servicing
Sales/
Marketing
Under-
writing
Pricing/
Reinsu-
rance
Business &
Market
Intelligence
Automatic
Claims
Product
Development
Interaction
and Advice
Distribution Scoring
Calibra-
tion
R&D
Data Analytics / AI / ML
Distributed Ledger / Blockchain / Smart Contracts
Robo Advice & Tools
CurrentFuture
Process is labor intensive driving high fixed costs
Process fully automated significantly reducing fixed costsEnvironment creation
Pre-market In-market and Interaction
Pre-market Post-marketUnderwriting and Sales
AI and ML touch every component and are value enablers
Calibration
Calibrate pricing to
better match
commercial conditions
Examples
• ”Pricing” as
opposed to
“costing”
• Focus on value
added
Subject to local rules and regulations
Leading to many potential use cases
Distribution
Use alternative data
sources to reach
customers in a cost
efficient manner
Examples
• Targeted
advertising
• Peer networks
Scoring
Determine risk score for
given data and product
elements
Examples
• Mortality by postal
code
• Driver analytics
• Health by wearable
data (fitness, ecg, etc.)
• Health by new data
(images, microbiome,
diet, epigenetics,
genetics)
Interaction and
advise
Determine optimal
insurance structure for
customer
Examples
• Finding proper
“bot” responses
• Leveraging data to
help match
customer and
product
Automatic claims
Develop ingredients to
automate claims
process
Examples
• Fraud detection
• Coverage analytics
and trends
Through Driverless AI
Financial Market Data
Financial Market Data
• Simple time series file with 12
month S&P 500 returns
• Relatively simple short and long-
term indicators – momentum and
fundamental
• Fascinating results in about 1 hour
15 minutes
Through Driverless AI
All Cause Mortality Risk Scores
All Cause Mortality Risk Scores
• A bit of reverse engineering
• Tested results of model already
designed to see what Driverless
AI would do
• Again, fascinating results in a
little over an hour essentially
picking the design of the model
and consistent with our research
* Dutch life expectancy
Based on Lifestyle
Assessing life expectancy
Chance of age
45 living to
age 65: 98%
Chance of age
45 living to
age 65: 92.5%
Chance of age
45 living to
age 65: 73%
*
Chris Madsen
Co-Founder and CEO
Aegon Blue Square Re
https://www.aegon.com/about/Aegon-Blue-Square-Re-NV/
Questions?

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A View on AI in Insurance - Chris Madsen - H2O AI World London 2018

  • 1. Chris Madsen Co-Founder and CEO Aegon Blue Square Re https://www.aegon.com/about/Aegon-Blue-Square-Re-NV/ A view on AI in Insurance
  • 2. Cost of sensors are decreasing and data availability increasing Driving an inflection point for change in insurance Time Cost SensorsInflection zone
  • 3. Insurtech has emerged Level of Interest in Insurtech over time Compared with Biotech and Fintech Source: Google Trends Source: Venture Scanner International Trends Though still relatively nascent
  • 4. Insurance is increasingly personalized and data driven CONNECTED CAR driving style, speeding, Braking, fuel savings, Maintenance, e-call CONNECTED LIFE daily activity, diet, sleep, stress CONNECTED FINANCE pension, investments, savings, payments CONNECTED HOME Smoke alarm, water leaks, burglary
  • 5. International Trends Devices are getting smarter & software & platforms follow Thousands of healthcare, fitness, medical apps
  • 6. * Tends to be significantly higher for chronic conditions such as diabetes As a result, the role of insurance changes Helping you when bad things happen Helping you prevent bad things from happening, but when they do, we will help you manage Price = Expected claims + Loading for Risk* + Loading for Expense Expected claims: can be lowered through active engagement Loading for Risk: can be lowered by more frequent touch- points as long as pricing can vary Loading for Expense: The greater the automation, the lower the expense
  • 7. And the insurance value chain along with it Claims Product Development Operations & Servicing Sales/ Marketing Under- writing Pricing/ Reinsu- rance Business & Market Intelligence Automatic Claims Product Development Interaction and Advice Distribution Scoring Calibra- tion R&D Data Analytics / AI / ML Distributed Ledger / Blockchain / Smart Contracts Robo Advice & Tools CurrentFuture Process is labor intensive driving high fixed costs Process fully automated significantly reducing fixed costsEnvironment creation Pre-market In-market and Interaction Pre-market Post-marketUnderwriting and Sales AI and ML touch every component and are value enablers
  • 8. Calibration Calibrate pricing to better match commercial conditions Examples • ”Pricing” as opposed to “costing” • Focus on value added Subject to local rules and regulations Leading to many potential use cases Distribution Use alternative data sources to reach customers in a cost efficient manner Examples • Targeted advertising • Peer networks Scoring Determine risk score for given data and product elements Examples • Mortality by postal code • Driver analytics • Health by wearable data (fitness, ecg, etc.) • Health by new data (images, microbiome, diet, epigenetics, genetics) Interaction and advise Determine optimal insurance structure for customer Examples • Finding proper “bot” responses • Leveraging data to help match customer and product Automatic claims Develop ingredients to automate claims process Examples • Fraud detection • Coverage analytics and trends
  • 9. Through Driverless AI Financial Market Data Financial Market Data • Simple time series file with 12 month S&P 500 returns • Relatively simple short and long- term indicators – momentum and fundamental • Fascinating results in about 1 hour 15 minutes
  • 10. Through Driverless AI All Cause Mortality Risk Scores All Cause Mortality Risk Scores • A bit of reverse engineering • Tested results of model already designed to see what Driverless AI would do • Again, fascinating results in a little over an hour essentially picking the design of the model and consistent with our research
  • 11. * Dutch life expectancy Based on Lifestyle Assessing life expectancy Chance of age 45 living to age 65: 98% Chance of age 45 living to age 65: 92.5% Chance of age 45 living to age 65: 73% *
  • 12. Chris Madsen Co-Founder and CEO Aegon Blue Square Re https://www.aegon.com/about/Aegon-Blue-Square-Re-NV/ Questions?

Editor's Notes

  1. 3
  2. 4
  3. 5