Data Science

Data Science

Our Consultants define the analytic question, Gather data using external API’s, public data sources, etc., Conduct Extensive descriptive analytics on the newly collected data, including visualization.

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Our Data Scientists approach problems with this process:

  • Our Consultants define the analytic question
  • Gather data using external API’s, public data sources, etc.,
  • Conduct Extensive descriptive analytics on the newly collected data, including visualization
  • Use the right machine learning or statistical modeling techniques to produce insight and better decisions
  • Operationalize these models so they can run in an automated context

We do this by working with these:

  • NoSQL (Graph, Document, Columnar) database models, XML, relational and other database models and associated SQL;
  • ETL tools and techniques, such as tools like Talend, Mapforce
  • statistical modelling, algorithms, data mining and machine learning algorithms such as k-NN, GBM, Neural Networks Naive Bayes, SVM, and Decision Forests
  • NLP and text based extraction techniques; also computer vision and signal processing
  • data science packages including Spark, Pandas, SciPy, and Numpy
  • Deep learning with Keras and TensorFlow
  • Visualization tools such as Tableau and PowerBI