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BMW-Innovation-Challenge

BMW Innovation Challenge

Problem statement : To increase the liklihood of the customer to make a lead on BMW Website Strategy : To identify the important features and work on that to increase the liklihood Data Preperation : The data was about 1Mn per day with 550 features. The data was very raw and had a lot of missing values and was unbalanced. Steps Involved : Missing Value Imputation Changing the categorical variables to dummy variables Removing the unwanted variables on the basis of Business Logic Making the data balanced using SMOTE technique

Model : Since the aim of the project was to identify important features, we decided to use Random Forest which will provide us with feature importance list. We could have used GBM but didn't due to the time constraint

Result: We achieved a model with an accuracy of 93% and F - Score of around 0.65

PS: We cannot share data because of BMW agreement

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