Driving Innovation


Rubiscape's Impact in the

Telecom Industry



Solutions build with Rubiscape

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Bridging Gaps:Power of Geospatial Matching

Match locations precisely, optimize operations, and gain a deeper understanding of your world with powerful geospatial matching.

Goal

  • Implement a geospatial matching algorithm with third-party retailers.
  • Leverage the strategic advantages of location intelligence for business model transformation and optimization.
  • Create a significant and lasting impact on operations.
  • Enhance the value delivered to customers and partners through the initiative.

Technique

  • Haversine distance function, Matrix Creation, Comparison, Matching Algorithm.

Impact

  • Expanding Market Reach.
  • Optimizing Resource Allocation.
  • Efficient inventory management.
  • Reduced transportation expenses.

Feeling Pulse: Text Reveals Emotion

Decoding opinions, understanding trends, and driving better decisions with sentiment analysis.

Goal

  • To identify high-level topics in the dataset, providing an understanding of subscriber feedback and their performance over time.
  • To employ sentiment analysis on the verbatim responses associated with each identified topic to categorise sentiments as positive, neutral, or negative.
  • To determine sentiment variations across different areas.

Technique

  • Text Preprocessing, Topic Modelling, Sentiment Analysis, Time Series Visualization, Visualization.

Impact

  • Enable strategic decision-making by providing a clear understanding of the key topics in subscriber feedback.
  • Pinpoint specific areas to guide targeted efforts and enhance customer satisfaction.
  • Provide insights into subscriber opinions through verbatim sentiment analysis.

Personalized Shopping: The E-commerce Edge

Unlock hidden customer groups, personalize offers, and boost sales with smarter segmentation.

Goal

  • To predict the customer’s lifetime value using RFM and k-means clustering.
  • To predict the review score for the next order or purchase.
  • To provide more accurate and relevant product recommendations to customers.
  • To find best valued customers segment.

Technique

  • Statistical Analysis, K-means Clustering Algorithm, Sentiment Analysis, Visualization.

Impact

  • Improved targeted marketing.
  • Personalised service, sales and marketing as per the needs of specific groups.
  • Informed decision-making and optimize offerings.
  • Enhanced customer experience.

Unveiling Loyalty: Predict Customer Lifespan

AI models pinpoint high-value customers, driving targeted engagement and long-term growth.

Goal

  • To identify high, medium, and low-value customer segments.
  • To provide personalized offers and experiences to customers.
  • To allocate resources efficiently to businesses for targeting customers with the highest CLV potential and predict customer churn.

Technique

  • Feature Engineering, Segmentation Techniques, RFM Analysis, Clustering and classification modeling, Visualization.

Impact

  • Guided resource allocation, marketing strategies, and customer service efforts.
  • Offering cross-selling and upselling opportunities to customers with CLV potential.
  • CLV helps businesses identify risks associated with over-reliance that encourages diversification and risk management strategies.
 

Do even more with Rubiscape

AI-driven organisations around the world use Rubiscape to solve their most pressing business problems.



Telecom

Drag, Drop, Discover:
Insights Made Simple.

Dive deep into your data, create stunning visuals, and gain actionable insights with ease.

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Telecom

Build, Deploy, Manage:
Streamline AI Workflow.

Build robust, Scalable ML/DL models with ease , automated workflows & data empowerment.

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Telecom

Wrangle, Blend, Analyze:
Data Orchestration Refined.

Develop data fabric and flow designs with low-code, pro-code and self service platform.

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Telecom

Manage, Evaluate, Automate:
Edge Analytics Seamless.

Handle data or device management with integrated ML models and M To M application.

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