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Big Data in Healthcare: Hype and Hope 
How can we find the path to precision medicine? 
Bonnie Feldman, DDS, MBA | www.drbonnie360.com | @DrBonnie360 | drbonnie360@gmail.com
© 2014 - All rights reserved.
Medical Data 
Owners: Consumers, caretakers 
Sources: Patients, providers 
Users: Patients, providers, R&D, payers 
Examples: vitals, fitness, history 
© 2014 - All rights reserved. 
Patient 
Clinical 
Financial 
R&D 
Owners: Providers, patients 
Sources: Patients, providers 
Users: R&D, patients, providers, payers 
Examples: EMRs, images, Dx, Tx 
Owners: Payers, 
Sources: Providers 
Users: Payers, providers, regulators 
Examples: claims, cost, payment, utilization 
Owners: Academics, pharma 
Sources: Providers, patients 
Users: Researchers, developers 
Examples: trials, screening libraries
© 2014 - All rights reserved.
Different Perspectives from: 
•Andrew Kasarskis Co-director, Icahn Institute for 
© 2014 - All rights reserved. 
Genomics and Multiscale Biology 
•Colin Hill CEO of GNS Healthcare 
•William King CEO Zephyr Health 
•Jonathan Hirsch Founder and President Syapse
Icahn Institute GNS Healthcare Zephyr Health Syapse 
What Integrate Big Data to 
build models of 
biology and thus 
better diagnose, 
treat + prevent 
disease 
© 2014 - All rights reserved. 
Value based Big data 
analytics for 
personalized 
interventions that 
deliver better 
population health 
Organizes health 
information that 
makes it useful and 
accessible for anyone 
Precision medicine 
platform that 
enables healthcare 
providers 
How Aggregation and 
mining of clinical, 
preclinical + basic 
research data, 
molecular + other 
profiling tech, EMR 
and other data 
sources 
Value- based 
analytics that 
combine economic 
and clinical models 
to predict the right 
interventions targets 
for best outcomes 
Integrates health 
data from thousands 
of disparate source 
lets users find 
insights by viewing 
data in context 
Semantic computing 
based Precision 
Medicine Platform 
aggregates genomic, 
molecular, outcomes 
and cost data 
For Whom Patients 
Providers 
Health Care 
Innovators 
Payers Life Science 
Companies 
Commercial team 
Medical affairs team 
Providers 
Oncology 
Cardiovascular 
Genomic Medicine
Open Questions 
•What has worked? 
•What has not worked? 
•How is your business model evolving? 
•Dreams for the future? 
© 2014 - All rights reserved.
+1.310.666.5312 
drbonnie360@gmail.com 
www.drbonnie360.com 
@DrBonnie360 
Bonnie Feldman 
DDS, MBA 
Business Development 
for Digital Health
Accelerating Intelligent Interventions 
Colin Hill, CEO & Founder 
November, 2014 
www.gnshealthcare.com
Big Data Analytics Accelerating Intelligent Interventions 
• Team of 50 (25 PhD’s) 
• Physicists 
•Health & Computer scientists 
•Health Epidemiologists 
•Health Actuaries 
•Mathematicians 
•Statisticians 
• Founded in 2000 
• Cambridge, MA 
• Solutions for 
• Payers 
• Providers 
• Pharma 
10
GNS Healthcare 
Emerging 
Data 
HRA, Labs, 
Geography 
EMR Data 
Consumer Data 
Pharmacy & Medical 
Claims 
GNS 
REFS™ Platform 
Individual 
Characteristics Intervention 
Economic 
Outcomes 
Clinical 
Outcomes 
Large & Diverse 
Data Sets 
Value-Based Inference 
Engine 
Personalized 
Interventions 
Value-Based vs. Rules-Based Approach 
11
Poor Medication Adherence 
12
Value-Based vs. Rules-Based Selection 
Value based selection precisely matches individuals and 
maximizes overall ROI 
Lucy Nora Ethel 
Age 46 24 66 
Drugs of Interest (DOIs) 
Cardio + Diabetes Cardio + Diabetes Cardio 
Cardio, Diabetes (oral), Chronic Respiratory Current PDC to DOIs 44% 29% 82% 
# Unique Pharmacies 2 1 2 
Prior Condition-Related Events? Yes No No 
Event Costs That Could ‘ve Been 
> $14,000 
< $200 
Avoided with Increase in PCD 
25% Increase 
45% Increase 
> $10,000 
10% Increase 
13
Meaningful Adherence™ 
Rules-based Value-based 
41,114 Selected individuals 42,856 
$ 2.3M Eliminated events $ 3.1M 
$ 1.6 M Additional Rx costs $ 0.5M 
$ -13.03 Net savings/participant $ 96.75 
(0.7) ROI 2.7 
• Rapid Time to Value 
– Personalized interventions on just the right targets 
– Optimizing cost savings 
– Improving clinical results 
• Revolutionizing Population Health Mgt. 
14
Accelerating Intelligent Interventions 
Colin Hill, CEO & Founder 
Colin@gnshealthcare.com 
GNS Healthcare 
1 Charles Park 
Cambridge, MA 02141 
www.gnshealthcare.com
Big Data, the Icahn Institute, and the 
Mount Sinai Health System 
Andrew Kasarskis 
NYeC Digital Health Conference 
November 17, 2014 
@IcahnInstitute
Building and Using Realistic Predictive Models of Biology 
18
Using the Big Data: Benefits for Patients, Providers, 
and Research at Mount Sinai 
BioBank Patient 
EMR 
(EPIC) 
Clinical 
Labs 
Sequencing 
Facility 
Data 
Warehouse 
Traffic 
Clinical Data 
Primary Data 
High-Performance 
Computing 
Research and 
Clinical Queries; 
Experiment 
Creation; etc. 
Actionable 
Feedback 
Disease Model 
Construction and 
Prediction 
Generation
Data Science Adds Value Across Constituencies 
Icahn Institute 
New Target and 
Biomarker Discovery 
Pathogen Surveillance 
Molecular 
Epidemiology
Closing Thought 
Population 
Sample 
acquisition 
Electronic Medical 
Record 
Clinical Care 
& Research 
Personal 
Environmental 
and Social 
Data 
Predictive 
Network Model 
21
Enabling Precision Medicine 
for Healthcare Providers 
Jonathan Hirsch 
Founder & President 
Syapse
Legacy oncology practice 
“Nuclear bomb” therapies
Precision cancer care 
“Smart bomb” therapies
Health System’s Challenge 
Providing rich genetic 
data and actionable 
information to 
physicians while 
overcoming legacy 
software infrastructure
Legacy software 
Best of the 1980s: 
EMR, PACS, LIS, CPOE, eMAR
Electronic Medical Record 
Can’t handle 
complex genomic data 
No data mining, 
visualization 
Built for billing 
& compliance
The precision medicine workflow… …and barriers to adoption. 
Clinical workup & 
Review clinical history 
Order test 
Lab generates MDx test report 
View clinical & MDx data 
Receive decision support based on 
guidelines, clinical, molecular data 
Order therapy or 
enroll patient in clinical trial 
Process drug procurement 
Monitor patient outcome 
& revise care strategy 
Track cost & adherence 
Obtain pre-authorization 
Molecular Tumor Board reviews 
clinical & MDx data; delivers 
guidance to physician 
Obtain off-label 
reimbursement authorization 
Assess health outcomes & 
modify care pathways 
data integration No and visualization 
decision support for MDx test orders 
pre-authorization support 
systematic decision support for 
therapy or clinical trials 
mechanism for sharing patient records 
systematic capture of physician 
decisions & patient outcomes 
systematic capture of treatment costs 
systematic update of care pathways 
No 
No 
No 
No 
No 
No 
No
The precision medicine workflow… …and barriers to adoption. 
Clinical workup & 
Review clinical history 
Order test 
Lab generates MDx test report 
View clinical & MDx data 
Receive decision support based on 
guidelines, clinical, molecular data 
Order therapy or 
enroll patient in clinical trial 
Process drug procurement 
Monitor patient outcome 
& revise care strategy 
Track cost & adherence 
Obtain pre-authorization 
EMR tabs 
EMR records 
Paper reports 
Emails 
Phone calls 
XLS, PPT, DOC files 
Mental steps 
Molecular Tumor Board reviews 
clinical & MDx data; delivers 
guidance to physician 
Obtain off-label 
reimbursement authorization 
Assess health outcomes & 
modify care pathways 
data integration No and visualization 
decision support for MDx test orders 
pre-authorization support 
systematic decision support for 
therapy or clinical trials 
mechanism for sharing patient records 
systematic capture of physician 
decisions & patient outcomes 
systematic capture of treatment costs 
systematic update of care pathways 
No 
No 
No 
No 
No 
No 
No 
8 
~50 
9 
4 
5 
12 
4 
Conservative estimate by users
Genomic data: EMR “Import”
A modern-day Tower of Babel 
No standard schemas 
No standard terminology 
Unstructured or 
semi-structured 
Thousands of record types 
Millions of property types
Introducing Syapse: 
Enterprise software to enable precision medicine 
Integrate molecular data into clinical workflow 
Tailor decision support to organization best practices 
Extend expertise to affiliate network
Data integration 
Physician 
Data Ingestion 
Sequencing & 
Analytics 
Sendout 
Labs 
PDF 
Excel 
PowerPoint 
Filemaker Pro 
One-Time Migration 
Interfaced Systems 
PACS EMR 
Data 
Warehouse 
LIS 
CPOE 
Drug 
Administration
Oncologist dashboard 
5 
4 
3 
2 
1 
1 Structured clinical data 
2 Omics data 
3 Drug procurement 
4 Longitudinal data 
5 Imaging metadata 
* All data included in this chart is for informational purposes 
only and does not include actual patient data
Cancer genomics workflow enabled by Syapse 
Clinical 
Workup 
Patient 
Consent 
Test Order 
in EMR 
Specimen 
Procurement 
Sequencing 
& Processing 
Filtering Searchable 
Database 
Report 
Delivery 
Clinical 
Data Review 
Molecular 
Tumor Board 
Syapse 
Clinical 
Decision
Big Data in Healthcare: Hype and Hope on the Path to Personalized Medicine

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Big Data in Healthcare: Hype and Hope on the Path to Personalized Medicine

  • 1. Big Data in Healthcare: Hype and Hope How can we find the path to precision medicine? Bonnie Feldman, DDS, MBA | www.drbonnie360.com | @DrBonnie360 | drbonnie360@gmail.com
  • 2. © 2014 - All rights reserved.
  • 3. Medical Data Owners: Consumers, caretakers Sources: Patients, providers Users: Patients, providers, R&D, payers Examples: vitals, fitness, history © 2014 - All rights reserved. Patient Clinical Financial R&D Owners: Providers, patients Sources: Patients, providers Users: R&D, patients, providers, payers Examples: EMRs, images, Dx, Tx Owners: Payers, Sources: Providers Users: Payers, providers, regulators Examples: claims, cost, payment, utilization Owners: Academics, pharma Sources: Providers, patients Users: Researchers, developers Examples: trials, screening libraries
  • 4. © 2014 - All rights reserved.
  • 5. Different Perspectives from: •Andrew Kasarskis Co-director, Icahn Institute for © 2014 - All rights reserved. Genomics and Multiscale Biology •Colin Hill CEO of GNS Healthcare •William King CEO Zephyr Health •Jonathan Hirsch Founder and President Syapse
  • 6. Icahn Institute GNS Healthcare Zephyr Health Syapse What Integrate Big Data to build models of biology and thus better diagnose, treat + prevent disease © 2014 - All rights reserved. Value based Big data analytics for personalized interventions that deliver better population health Organizes health information that makes it useful and accessible for anyone Precision medicine platform that enables healthcare providers How Aggregation and mining of clinical, preclinical + basic research data, molecular + other profiling tech, EMR and other data sources Value- based analytics that combine economic and clinical models to predict the right interventions targets for best outcomes Integrates health data from thousands of disparate source lets users find insights by viewing data in context Semantic computing based Precision Medicine Platform aggregates genomic, molecular, outcomes and cost data For Whom Patients Providers Health Care Innovators Payers Life Science Companies Commercial team Medical affairs team Providers Oncology Cardiovascular Genomic Medicine
  • 7. Open Questions •What has worked? •What has not worked? •How is your business model evolving? •Dreams for the future? © 2014 - All rights reserved.
  • 8. +1.310.666.5312 drbonnie360@gmail.com www.drbonnie360.com @DrBonnie360 Bonnie Feldman DDS, MBA Business Development for Digital Health
  • 9. Accelerating Intelligent Interventions Colin Hill, CEO & Founder November, 2014 www.gnshealthcare.com
  • 10. Big Data Analytics Accelerating Intelligent Interventions • Team of 50 (25 PhD’s) • Physicists •Health & Computer scientists •Health Epidemiologists •Health Actuaries •Mathematicians •Statisticians • Founded in 2000 • Cambridge, MA • Solutions for • Payers • Providers • Pharma 10
  • 11. GNS Healthcare Emerging Data HRA, Labs, Geography EMR Data Consumer Data Pharmacy & Medical Claims GNS REFS™ Platform Individual Characteristics Intervention Economic Outcomes Clinical Outcomes Large & Diverse Data Sets Value-Based Inference Engine Personalized Interventions Value-Based vs. Rules-Based Approach 11
  • 13. Value-Based vs. Rules-Based Selection Value based selection precisely matches individuals and maximizes overall ROI Lucy Nora Ethel Age 46 24 66 Drugs of Interest (DOIs) Cardio + Diabetes Cardio + Diabetes Cardio Cardio, Diabetes (oral), Chronic Respiratory Current PDC to DOIs 44% 29% 82% # Unique Pharmacies 2 1 2 Prior Condition-Related Events? Yes No No Event Costs That Could ‘ve Been > $14,000 < $200 Avoided with Increase in PCD 25% Increase 45% Increase > $10,000 10% Increase 13
  • 14. Meaningful Adherence™ Rules-based Value-based 41,114 Selected individuals 42,856 $ 2.3M Eliminated events $ 3.1M $ 1.6 M Additional Rx costs $ 0.5M $ -13.03 Net savings/participant $ 96.75 (0.7) ROI 2.7 • Rapid Time to Value – Personalized interventions on just the right targets – Optimizing cost savings – Improving clinical results • Revolutionizing Population Health Mgt. 14
  • 15. Accelerating Intelligent Interventions Colin Hill, CEO & Founder Colin@gnshealthcare.com GNS Healthcare 1 Charles Park Cambridge, MA 02141 www.gnshealthcare.com
  • 16. Big Data, the Icahn Institute, and the Mount Sinai Health System Andrew Kasarskis NYeC Digital Health Conference November 17, 2014 @IcahnInstitute
  • 17.
  • 18. Building and Using Realistic Predictive Models of Biology 18
  • 19. Using the Big Data: Benefits for Patients, Providers, and Research at Mount Sinai BioBank Patient EMR (EPIC) Clinical Labs Sequencing Facility Data Warehouse Traffic Clinical Data Primary Data High-Performance Computing Research and Clinical Queries; Experiment Creation; etc. Actionable Feedback Disease Model Construction and Prediction Generation
  • 20. Data Science Adds Value Across Constituencies Icahn Institute New Target and Biomarker Discovery Pathogen Surveillance Molecular Epidemiology
  • 21. Closing Thought Population Sample acquisition Electronic Medical Record Clinical Care & Research Personal Environmental and Social Data Predictive Network Model 21
  • 22. Enabling Precision Medicine for Healthcare Providers Jonathan Hirsch Founder & President Syapse
  • 23. Legacy oncology practice “Nuclear bomb” therapies
  • 24. Precision cancer care “Smart bomb” therapies
  • 25. Health System’s Challenge Providing rich genetic data and actionable information to physicians while overcoming legacy software infrastructure
  • 26. Legacy software Best of the 1980s: EMR, PACS, LIS, CPOE, eMAR
  • 27. Electronic Medical Record Can’t handle complex genomic data No data mining, visualization Built for billing & compliance
  • 28. The precision medicine workflow… …and barriers to adoption. Clinical workup & Review clinical history Order test Lab generates MDx test report View clinical & MDx data Receive decision support based on guidelines, clinical, molecular data Order therapy or enroll patient in clinical trial Process drug procurement Monitor patient outcome & revise care strategy Track cost & adherence Obtain pre-authorization Molecular Tumor Board reviews clinical & MDx data; delivers guidance to physician Obtain off-label reimbursement authorization Assess health outcomes & modify care pathways data integration No and visualization decision support for MDx test orders pre-authorization support systematic decision support for therapy or clinical trials mechanism for sharing patient records systematic capture of physician decisions & patient outcomes systematic capture of treatment costs systematic update of care pathways No No No No No No No
  • 29. The precision medicine workflow… …and barriers to adoption. Clinical workup & Review clinical history Order test Lab generates MDx test report View clinical & MDx data Receive decision support based on guidelines, clinical, molecular data Order therapy or enroll patient in clinical trial Process drug procurement Monitor patient outcome & revise care strategy Track cost & adherence Obtain pre-authorization EMR tabs EMR records Paper reports Emails Phone calls XLS, PPT, DOC files Mental steps Molecular Tumor Board reviews clinical & MDx data; delivers guidance to physician Obtain off-label reimbursement authorization Assess health outcomes & modify care pathways data integration No and visualization decision support for MDx test orders pre-authorization support systematic decision support for therapy or clinical trials mechanism for sharing patient records systematic capture of physician decisions & patient outcomes systematic capture of treatment costs systematic update of care pathways No No No No No No No 8 ~50 9 4 5 12 4 Conservative estimate by users
  • 30. Genomic data: EMR “Import”
  • 31. A modern-day Tower of Babel No standard schemas No standard terminology Unstructured or semi-structured Thousands of record types Millions of property types
  • 32. Introducing Syapse: Enterprise software to enable precision medicine Integrate molecular data into clinical workflow Tailor decision support to organization best practices Extend expertise to affiliate network
  • 33. Data integration Physician Data Ingestion Sequencing & Analytics Sendout Labs PDF Excel PowerPoint Filemaker Pro One-Time Migration Interfaced Systems PACS EMR Data Warehouse LIS CPOE Drug Administration
  • 34. Oncologist dashboard 5 4 3 2 1 1 Structured clinical data 2 Omics data 3 Drug procurement 4 Longitudinal data 5 Imaging metadata * All data included in this chart is for informational purposes only and does not include actual patient data
  • 35. Cancer genomics workflow enabled by Syapse Clinical Workup Patient Consent Test Order in EMR Specimen Procurement Sequencing & Processing Filtering Searchable Database Report Delivery Clinical Data Review Molecular Tumor Board Syapse Clinical Decision