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"Congratulations to all for their outstanding work. I know the success of this tremendous effort is due to the commitment of the entire Patni team...An excellent example of cross-functional collaboration and effective project management continues to look very good. Keep doing it!"
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Case Study
 

Data Quality Assessment for a leading acoustic product manufacturer

The Challenge The Solution The Benefits

Through a comprehensive data quality assessment exercise, Patni helped a leading acoustic product manufacturer create the foundation for its Unified Customer Repository initiative

The Client

The client is one of the leading manufacturers of acoustic products.

The Challenge

For ensuring the highest levels of customer satisfaction, the client had created multiple delivery channels to give customers the choice of buying the product from any channel they wanted. Customers had the option of buying directly from the company's store, a third party retail store or even buy products online. All these different delivery channels were powered by different applications such as Siebel, SAP and home grown Web applications.

With customers being acquired through different delivery channels, and information spread across different applications, the client did not have a single view of the customer. In some instances, the same customer information was captured through different applications leading to inconsistencies and duplication.

The fragmented nature of customer information posed the following challenges:

No centralized customer data ownership for control
Inability to support future product directions
Inability to detect customer fraud due to missing linkages between the customer and order information
Inability to understand marketing preferences of each customer
Inconsistency in privacy options of customers.


With the objective of enabling a single view of the customer, the client decided to create a Unified Customer Repository (UCR). As the quality of data was an extremely critical factor for building an effective UCR, Patni recommended a comprehensive data quality assessment.
 

The solution

With extensive experience in similar data quality assessment exercises, Patni was invited to advise and suggest best practices for ensuring accurate customer data. As a starting step, the scope of the project was determined through the use of comprehensive questionnaires by collaborating with customer representatives from different categories of users. The inputs of this survey helped the customer get an understanding of all the key attributes that could uniquely identify a customer.

Business definitions and business rules were defined for key customer elements, and voice of the customer was captured to improve data quality. These elements were measured with respect to parameters such as completeness of information, record duplication, data reconciliation issues, unexpected entries and internal inconsistencies.

An applications compliance scorecard was built with standardized business definitions and rules for critical data elements. Data sampling and data profiling using Trillium Discovery was done for understanding the structure, content and quality of data. Existing data was measured against this scorecard and defects were analyzed to understand root causes. Understanding the importance of people participation, Patni conducted multiple interviews, educated the client on data quality processes, and made presentations to key stakeholders across the organization to get the required buy-in for the data quality assessment initiative.

Patni also assisted the client in evaluation and selection of the right data quality product. The evaluation of the product was done using the Pugh Matrix method. Vendors were asked to provide proof of concept of the data quality assessment tool. Results of 90 test cases on sample files cleaned by the vendors were checked with respect to different categories relevant to the customer's environment. This included parameters such as data profiling, data cleansing, level of standardization, architecture, level of integration, performance, systems requirements, security, development and maintenance and vendor viability.
 

The Technology

Siebel
SAP
Oracle
Trillium Discovery.
 

The Benefits


Patni's solution helped the client understand the key steps that were critical for improving data quality. Through this solution, the client laid the foundation for its UCR initiative.

Some of the significant benefits include:
Good understanding of the quality of data in key elements across different applications
Identification of common data quality issues and implementation plan to fix these issues
Standardized processes that helped in maintaining data integrity and quality.

 
   
Read More Case Studies on Business Intelligence
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BI Data Quality Assessment
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