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Data Science To Data Products
Cameron Turner
The Data Guild
October 22, 2015
A tale of three models…Model #1
The Bearded Research Team
A tale of three models…Model #2
The Exploited Data Science Team
A tale of three models…Model #3:
The Integrated Data Team
Model 1: Beards
Dev/Eng Mtkg
Mgmt
Sales
Data
Science
Model 2: Exploited
Dev/Eng Mtkg
Mgmt
SalesData
Science
Model 3: Integrated
Dev/Eng Mtkg
Mgmt
Sales
Data
Science
Vote
Type I. Type II. Type III.
Who are we?
A little about The Data Guild…
• What
– We are a Data Product Studio in Palo Alto
– We create data-driven solutions that serve our
customers’ highest strategic priorities
• Who
– Data as science, practice, and mission
– Experience required
– Full-stack product teams
– The importance of being T-shaped…
Scale: Data Product for Everyone?
Overcoming the Trough (Pit)
Finding a Balance
Finding
Scale:
One Size
Fits All
Generating
Value:
Last Mile
Integration
“Firm” Value:
Scalability
“Client” Value:
Solves Problem
Design Tenet: Economies of Scope
Energy
Healthcare
Finance/Fraud
Education
Agriculture
IoT/Sensors
Prediction/Recommendation/Machine-Learning
Data Design/Applied Data Strategy
Data Cleansing/Aggregation/Architecture
Example: Energy Optimization
25
April Plant efficiency by Equipment Combo Active
20
Modeled Set Points Value (Yellow): 
Modeled Pre Intervention Value (Orange): 
Actual Value (Red): 
Machine Learning on/off (Black): 
Observed Savings*: 
Plant kW/ton, 2014-09-28 to 2014-10-04
Closing Thought…the last mile...
Thank you!
Cameron Turner
cameron@thedataguild.com
@cturner50

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From Science to Product (Company)

Editor's Notes

  1. In this study, we hoped to build a picture of the opportunity for machine learning and artificial intelligence in the business of HVAC system optimization. To do so, we took first one month, then one year of historical operating data from a large Optimum Energy Deployment (IBM 901 in Austin, TX). We analyzed the performance of the system over time. This helped us to gain intuition about the systems performance, and formulate hypotheses for formal statistical testing. TODO: ZOOM IN TO SHOW WHAT YOU WANT TO SHOW.
  2. One area of opportunity that was noted was the spread of efficiency between the different chiller combinations due to covariance. This was counter to the intuition that this site (chosen for its simplicity: 5 homogeneous chillers) should have consistent performance between combinations.