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Among the many good things automation has enabled, such as improved efficiency across operational areas, better access to data is one of the most important. Data can provide insights that can help in developing focused strategies, be it in improving production, controlling costs or increasing customer success.
However, organizations are not necessarily reaping these benefits. In fact, Experian Data Quality Research reveals that US businesses are making losses to the tune of $600 billion, as much as 12% of revenues, due to bad data. According to another estimate, it is as high as $3.1 trillion annually!
Every organization has a variety of information technology systems that ensure ease of operations. They could range from ERP, EQMS, CRM to financial accounting, some of it on premises and some on cloud. Today, organizations also have access to external data – quantitative and qualitative – adding to the wealth of information they can leverage for better decision making.
If applied correctly, data can enable companies to identify and respond to new opportunities, quickly turn around root cause analysis of failures into actionable intelligence, and learn from the organization’s experience to start predicting future events. Needless to say, data improves overall efficiency and productivity and further enables the speed and agility of an organization to gain competitive advantage.
Considering the value data can bring to an organization, data quality is important because without high-quality data, decision-making becomes difficult and reduces confidence and trust in making knowledgeable decisions. Companies are facing a wider range of challenges than ever before, especially for highly regulated manufacturers, and data accuracy has become much more important. That’s why data accuracy and data quality improvement have become crucial.
Although human error is the main source of data problems, there are several steps to getting to data quality. Some of the key components to achieve quality data are:
Inaccuracy is inevitable whether due to human error or due to data migration. Utilizing tools either through good governance control or use of automated software can help organizations maintain high data quality. If we can improve the quality of data, then we will have better information to support decision making. Better decisions will lead to better outcomes/results and will in turn be likely to have better quality data arising from them.
Having such high-quality data is the ideal, but the reality is far from it. Challenges emerge due to data being available in silos and in disparate formats, from textual content, images, videos to databases and social media content, amongst others.
Within an organization, the coexistence of legacy and new systems is one reason for such data variations. Mergers and acquisitions can compound the problem as the two merging entities are likely to have different systems for managing their different operations and store them differently. Or as stated previously, human error, which is inevitable and persistent.
Some of the symptoms to detect data mismanagement would be missing or hard to locate data, too many errors in the documents and files, increasing customer complaints and inability to resolve them to the satisfaction of the customer, missed deadlines and difficulties during audits.
As a result, organizations face multiple challenges across the entire manufacturing process from design to delivery, including:
These can have repercussions right from regulatory compliance to customer satisfaction and of course, revenue losses.
Given the criticality of data for an organization’s growth, efficiency and effectiveness, access, management and organization of data becomes important. Quality data needs quality processes and systems to support data management. Quality Management Systems can help by supporting the several areas needed for data quality.
The following four steps involved in data quality management can be better managed by organizations that have implemented a good quality management system:
A good quality management system such as Change Management Software offered by Compliance Quest can help organizations streamline their data quality management. It can provide a clear audit trail, stores data in a secure manner accessible through proper authorization, enable appropriate training, help in change management and take appropriate corrective action preventive actions (CAPA).
CQ’s years of experience in handling data, quality management systems and processes make it the right partner for supporting any organization’s data quality improvement needs. Its EQMS solution is reliable, versatile and scalable for all sizes of companies with built-in best practices and seamless processes running on the latest modern-cloud Salesforce platform.
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