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How Data Analytics Can Improve Efficiency and Profitability

By Citrin Cooperman's Digital Services Practice .

September 19, 2024 - As the saying goes, ”Work smarter, not harder,“ and data analytics is a prime example of how some organizations are doing just that.

Data analytics has become a cornerstone of modern business strategies, turning raw data into actionable insights. It is the key to identifying trends, understanding customer behavior, and guiding companies toward smarter decision making.

Operational efficiency is about delivering high-quality products or services while optimizing resources. It involves streamlining processes, maximizing productivity, and minimizing waste. Finetuning every aspect of your operations for peak performance helps reduce costs, improve customer satisfaction, and strengthen your competitive edge.

Enhancing operational efficiency is essential for businesses striving for sustainable growth and industry leadership can potentially provide benefits, such as:

  • Reduced costs
  • Increased revenue and profitability
  • Shorter lead times
  • Improved customer satisfaction
  • Enhanced staff engagement and retention
  • Higher productivity levels
  • Greater sustainability

Three ways data analytics can drive operational efficiency and unlock key benefits

  1. Informed decision making

    Data provides solid evidence to support decisions, and the more data businesses analyze, the more valuable it becomes. As noted in Citrin Cooperman’s Private Company Performance Report, which surveyed over 1,000 private company owners, the top three current uses of data analytics among respondents are to:
    • Improve efficiency of product or service sourcing (68%)
    • Better understand buyer behavior (65%)
    • Improve profitability of products (67%)

    Analytics engines grow ”smarter“ by learning from a company’s real-world outcomes and linking them to the collected data — doing so without the biases and limitations that individual decision makers may encounter.

    Effective decision making is essential for sustaining and growing any business. It is equally important to remove emotions from the process and base decisions on accurate, actionable insights. Advanced analytical methods provide business leaders with highly reliable data to inform their decisions, including forecasting future demand based on historical data or current market conditions.

    Additionally, analytics can simulate multiple scenarios to mitigate potential risks. By creating hypothetical scenarios, comparing outcomes from various samples, and identifying the most suitable solutions, companies can proactively address challenges. This information helps to prevent losses by suggesting measures to stabilize systems and manage risk factors.

    Data analytics also enables organizations to make real-time decisions. In large companies, data is often sourced from multiple channels, making it crucial to quickly gather and interpret information to make immediate decisions. For instance, a retail chain can leverage real-time analytics to adjust pricing strategies based on competitor pricing, demand fluctuations, and inventory levels. Similarly, predictive analytics can help a manufacturing company anticipate machinery failures and schedule maintenance proactively, reducing downtime and operational costs.
  2. Predicting customer retention

    Data analytics can assist businesses in predicting customer retention by offering insights into customer behavior and preferences.

    Predictive analytics process customer data in real time to forecast future actions based on past interactions. It can help enterprises in the following ways:
    • Identify at-risk customers – Predicting the support customers might need before they ask for it and recognize those who may be considering leaving
    • Enhance customer service – Anticipating needs and streamlining support by providing proactive assistance
    • Personalize experiences – Customizing strategies to cater to specific customer segments
    • Optimize product offerings – Displaying products aligned with customer preferences, increasing the likelihood of purchases

    Beyond this, descriptive analytics reveal patterns within customer segments by analyzing historical data. For example, businesses can identify periods of inactivity that may signal potential churn and track the percentage of customers meeting this threshold over time.

    For companies using Voice of the Customer (VoC) data, VoC information, combined with the points listed above, provides a holistic view of customer needs and expectations. This comprehensive insight allows businesses to make data-driven improvements to products, services, and processes, leading to a more personalized customer experience and increased loyalty.
  3. Supporting product development

    Data analytics help businesses address critical questions like, ”How can we develop a successful product?“ or ”What information is valuable at different stages of production?“

    At their core, data analytics platforms enable companies to innovate and refine their existing performance metrics by incorporating real-time customer feedback. This process involves systematically using structured data to enhance or create new products. By leveraging data analytics, companies can swiftly transition from lab testing to market launch, boosting adoption rates and gaining a competitive edge, with confidence that their products are aligned with current market demands.

Make sense of your data with Citrin Cooperman

Want to learn more about how data analytics can improve efficiency and profitability? Citrin Cooperman’s Digital Services Practice has extensive experience in helping clients discover opportunities in today’s analytical universe with tools like Microsoft’s Power BI.

Need help building out your data platforms? We’re here to assist. Contact us today and our team will collaborate with you to develop a tailored business intelligence (BI) blueprint, ensuring our strategy aligns with your business goals and challenges.

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