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Health Catalyst
Jump start analytics in your HIE
© 2018
Health
Catalyst
Imagine…
2
© 2018
Health
Catalyst
Transactional Value
&
Analytical Value
3
© 2018
Health
Catalyst
4
Transactional System vs
Analytic Platform
5
© 2018
Health
Catalyst
6
Transactional Data (OLTP) Analytic Data (OLAP)
Application / Transaction Oriented Subject / Analysis Oriented
Used to operate the business Used to analyze the business
Current real time History to current
Repetitive real time access Ad-Hoc access
Performance Sensitive (real time
response)
Performance Relaxed
Few records accessed at a time Large volumes accessed at a time
Read + Update Access and indexed Read only (batch update)
No data redundancy (3rd Normal Form) Redundancy accepted (de-normalized)
Thousands of users accessing in real time Hundreds of users (ad hoc)
Data Operating System (DOS)
© 2018
Health
Catalyst
DOS enables the full potential of data
EDW
Traditional
Delayed by a
day or more
Conference
Room
Analytics
Retrospective
Right Time
From event to
insight quickly
Operational
Analytics
Real-time data
pipeline, FHIR
Right Insights
Predictive
Prescriptive
Quality &
Performance
Metrics
SQL Algorithms,
Machine Learning
models
Right Place
At point of care
In the workflow
Unsupervised
Outcomes
EMR Closed
Loop, Excel,
Analytics Portal
Right Delivery
Analytic
Accelerators
Software Modules
Mobile
Create-your-own
apps
Open APIs,
App Platform,
Fabric Services
Traditional EMRs and EDWs have brought us this far
Right Data
Multiple
integrated data
sources
External data
sources
Socioeconomic,
Personal device
data, Big Data
DOS DOS DOS DOS DOS
© 2018
Health
Catalyst
The Data Operating System
Data Ingest
Real-time
Streaming
Source
Connectors
Catalyst Analytics Platform Fabric Data Services
Real-time
Processing
Health Catalyst Applications
Data
Quality
Data
Governance
Pattern
Recognition
Hadoop/
Spark
Data Export
Population &
Registry
Builder
Leading
Wisely
Care
Management
Atlas
Client-built
Applications
NLP
Touchstone
Benchmarks
CORUS
Cost
Accounting
Patient
Safety
Measures
Manager
ACO
Financials
Patient
Engagement
HL7
Data Pipelines Metadata
Data Lake
Reusable
Content
AI Models
Third-party
Apps
Artificial
Intelligence
Pipelines
Marketplace
SAMD
& SMD
Fabric Application Services
Terminology
& Groupers
EMR
Integration
Security, Identity
& Compliance
Patient & Provider
Matching
Value Sets
& Measures
Standard,
Extensible
Data Models
RegistriesFHIR
HL7
Analytic
Accelerators
© 2018
Health
Catalyst
Flow of Data through DOS
10
Claims
Reports
DOS
Open APIs & Marketplace
Extend
EMR
Apps
Notes
Cost
Care Mgmt
Social
Biometric
Content
Acquire
200+ data
sources
Organize
Source Marts
Standardize
Shared Data
Marts
Analyze
Combine | Enrich | Predict
Fabric Data Microservices, Content
Microservices, AI Models
Deliver
EMR Integration
Source
Connectors
Data Ingest
Data
Pipelines
Data Lake
Standard Data
Models
Metadata Data
Governance
Data Quality
HL7
FHIR
Real-time
Streaming
Machine
Learning
Pipelines
NLP Pattern
Recognition
Security,
Identity &
Compliance
Registries
Terminology
& Groupers
Measures
EMR
Integration
Patient &
Provider
Matching
Closed Loop
EMR
Data Export
Apps AI Models
HIE
Longitudinal
Record
© 2018
Health
Catalyst
7 Attributes of DOS
11
Reusable Clinical
and
Business Logic
Streaming Data
Integrates Structured
and Unstructured
Data
Closed-Loop
Capability
Microservices
Architecture
Machine Learning
Agnostic Data Lake
© 2018
Health
Catalyst
What do we know about our patients?
12
Historical and Analytical
Insights
Data in the
Moment
• Chief Complaint
• Observations
• Labs
• Diagnosis
• Procedures
• Medications
• Clinical History
• “Patients like me”
• Risk Prediction Models
• Cost Estimates
• Gaps in Care
• Patient Registries
© 2018
Health
Catalyst
A different kind of data integration
13
Analytical InsightsAt the Point of Care
• Diagnosis
• Medications
• Labs
• Procedures
• Observations
• Chief Complaint
• Gaps in Care
• “Patients like me”
• Risk Prediction Models
• Cost Estimates
Demonstration
Turning Data into Outcomes
© 2018
Health
Catalyst
Health Catalyst Mission
Unleash data as a catalyst for massive, sustained improvement in healthcare outcomes
1616
2
3
1Provide insight-producing
analytics and decision
support technology
Deliver proven analytics
services and improvement
expertise
Create the best place to work
© 2018
Health
Catalyst
Capabilities to Scale Outcomes Improvement
Leadership, Culture and Governance
Financial Alignment
Where do we focus?
How are we compensated?
What should we be doing?
How are we doing?
How do we transform?
Clinical Outcomes
Cost Outcomes
Experience Outcomes
17
Health Catalyst Overview
Domain Experts Analysts, Data Scientists, Data Architects Outsourced Services
Patient Safety
Cloud-based
Recommendation
Engines
Machine
Learning NLP Big Data Closed-Loop Mobile
Vertical, Use-Case Driven Applications
Care
Management
Pop Health /
ACO Suite
Cross-Cutting Analytic Applications
CORUS
(Costing)
Health Catalyst Applications Portfolio
Health Catalyst Data Operating System (DOS)
Real-time
Streaming
Services
Analytic
Accelerators
AtlasLeading
Wisely
TouchStone
(Benchmarks) Populations
Builder
Applications built with cutting-edge technology:
Measures
Manager
Questions?

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Jump Start Analytics in Your HIE (webinar)

  • 1. Health Catalyst Jump start analytics in your HIE
  • 6. © 2018 Health Catalyst 6 Transactional Data (OLTP) Analytic Data (OLAP) Application / Transaction Oriented Subject / Analysis Oriented Used to operate the business Used to analyze the business Current real time History to current Repetitive real time access Ad-Hoc access Performance Sensitive (real time response) Performance Relaxed Few records accessed at a time Large volumes accessed at a time Read + Update Access and indexed Read only (batch update) No data redundancy (3rd Normal Form) Redundancy accepted (de-normalized) Thousands of users accessing in real time Hundreds of users (ad hoc)
  • 8. © 2018 Health Catalyst DOS enables the full potential of data EDW Traditional Delayed by a day or more Conference Room Analytics Retrospective Right Time From event to insight quickly Operational Analytics Real-time data pipeline, FHIR Right Insights Predictive Prescriptive Quality & Performance Metrics SQL Algorithms, Machine Learning models Right Place At point of care In the workflow Unsupervised Outcomes EMR Closed Loop, Excel, Analytics Portal Right Delivery Analytic Accelerators Software Modules Mobile Create-your-own apps Open APIs, App Platform, Fabric Services Traditional EMRs and EDWs have brought us this far Right Data Multiple integrated data sources External data sources Socioeconomic, Personal device data, Big Data DOS DOS DOS DOS DOS
  • 9. © 2018 Health Catalyst The Data Operating System Data Ingest Real-time Streaming Source Connectors Catalyst Analytics Platform Fabric Data Services Real-time Processing Health Catalyst Applications Data Quality Data Governance Pattern Recognition Hadoop/ Spark Data Export Population & Registry Builder Leading Wisely Care Management Atlas Client-built Applications NLP Touchstone Benchmarks CORUS Cost Accounting Patient Safety Measures Manager ACO Financials Patient Engagement HL7 Data Pipelines Metadata Data Lake Reusable Content AI Models Third-party Apps Artificial Intelligence Pipelines Marketplace SAMD & SMD Fabric Application Services Terminology & Groupers EMR Integration Security, Identity & Compliance Patient & Provider Matching Value Sets & Measures Standard, Extensible Data Models RegistriesFHIR HL7 Analytic Accelerators
  • 10. © 2018 Health Catalyst Flow of Data through DOS 10 Claims Reports DOS Open APIs & Marketplace Extend EMR Apps Notes Cost Care Mgmt Social Biometric Content Acquire 200+ data sources Organize Source Marts Standardize Shared Data Marts Analyze Combine | Enrich | Predict Fabric Data Microservices, Content Microservices, AI Models Deliver EMR Integration Source Connectors Data Ingest Data Pipelines Data Lake Standard Data Models Metadata Data Governance Data Quality HL7 FHIR Real-time Streaming Machine Learning Pipelines NLP Pattern Recognition Security, Identity & Compliance Registries Terminology & Groupers Measures EMR Integration Patient & Provider Matching Closed Loop EMR Data Export Apps AI Models HIE Longitudinal Record
  • 11. © 2018 Health Catalyst 7 Attributes of DOS 11 Reusable Clinical and Business Logic Streaming Data Integrates Structured and Unstructured Data Closed-Loop Capability Microservices Architecture Machine Learning Agnostic Data Lake
  • 12. © 2018 Health Catalyst What do we know about our patients? 12 Historical and Analytical Insights Data in the Moment • Chief Complaint • Observations • Labs • Diagnosis • Procedures • Medications • Clinical History • “Patients like me” • Risk Prediction Models • Cost Estimates • Gaps in Care • Patient Registries
  • 13. © 2018 Health Catalyst A different kind of data integration 13 Analytical InsightsAt the Point of Care • Diagnosis • Medications • Labs • Procedures • Observations • Chief Complaint • Gaps in Care • “Patients like me” • Risk Prediction Models • Cost Estimates
  • 15. Turning Data into Outcomes
  • 16. © 2018 Health Catalyst Health Catalyst Mission Unleash data as a catalyst for massive, sustained improvement in healthcare outcomes 1616 2 3 1Provide insight-producing analytics and decision support technology Deliver proven analytics services and improvement expertise Create the best place to work
  • 17. © 2018 Health Catalyst Capabilities to Scale Outcomes Improvement Leadership, Culture and Governance Financial Alignment Where do we focus? How are we compensated? What should we be doing? How are we doing? How do we transform? Clinical Outcomes Cost Outcomes Experience Outcomes 17
  • 18. Health Catalyst Overview Domain Experts Analysts, Data Scientists, Data Architects Outsourced Services Patient Safety Cloud-based Recommendation Engines Machine Learning NLP Big Data Closed-Loop Mobile Vertical, Use-Case Driven Applications Care Management Pop Health / ACO Suite Cross-Cutting Analytic Applications CORUS (Costing) Health Catalyst Applications Portfolio Health Catalyst Data Operating System (DOS) Real-time Streaming Services Analytic Accelerators AtlasLeading Wisely TouchStone (Benchmarks) Populations Builder Applications built with cutting-edge technology: Measures Manager

Editor's Notes

  1. This slide shows how EDW stop at getting the right data while DOS goes beyond to enable you to get the full value of analytics
  2. Right Data: DOS provides the Catalyst Analytics Platform to acquire, organize and standardize data At the right time: DOS provides real-time streaming and low latency processing to have analytics ready soon after the business event has been recorded With the right insights: DOS provides AI pipelines and AI models so you can create the right insights To the right place: EMR integration shows the insights in the clinician workflow, Analytics portal enables anyone in the organization to interact with data and Excel integration enables business folks to analyze data Using the right applications: Open APIs enable you to build your own DOS applications or use third-party applications to customize and enhance your DOS
  3. Reusable clinical and business logic: Registries, value sets, and other data logic lies on top of the raw data and can be accessed, reused, and updated through open APIs, enabling third-party application development. Streaming data: Near- or real-time data streaming from the source all the way to the expression of that data through DOS that can support transaction-level exchange of data or analytic processing. Integrates structured and unstructured data: Integrates text and structured data in the same environment. Eventually, it will incorporate images too. Closed-loop capability: The methods for expressing the knowledge in DOS, include delivering that knowledge at the point of decision making, for example, back into the workflow of source systems, such as an EHR. Microservices architecture: In addition to abstracted data logic, open microservices APIs exist for DOS operations such as authorization, identity management, data pipeline management, and DevOps telemetry. These microservices also enable third-party applications to be built on DOS. Machine learning: DOS natively runs machine learning models, and enables rapid development and utilization of ML models, embedded in all applications. Agnostic data lake: Some or all of DOS can be deployed over the top of any healthcare data lake. The reusable forms of logic must support different computation engines; e.g., SQL, Spark SQL, SQL on Hadoop, et al.
  4. David just took you through what is required from a platform perspective to excel at analytics, but at Health Catalyst, we are not just in this business of providing analytics, we are here to use data to drive outcomes. In fact, that is our mission.
  5. 3 Systems; Key difference;