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About Me:

👋 Hi there! I'm Sharad, a Data Engineer passionate about leveraging data-driven insights to solve complex problems and drive meaningful impact.
I am well-versed in using a wide range of tools and programming languages such as:

  1. Python
  2. SQL
  3. PySpark
  4. Kafka
  5. AWS - EMR, RDS, S3, REDSHIFT
  6. Airflow
  7. Hadoop Ecosystem- HDFS, MapReduce, HBase, Sqoop, Flume, Hive
  8. Grafana
  9. InfluxDB
  10. Docker
  11. Linux

🌟 If you are looking for a data engineer who combines strong technical skills, a passion for problem-solving, and a collaborative mindset, I'd love to connect and explore potential opportunities. Feel free to reach out via https://www.linkedin.com/in/sharadchoudhury27/.

Let's make data-driven decisions together and unlock new possibilities!

Sharad 's Projects

age-and-gender-detection icon age-and-gender-detection

This is the Major Project carried out during my final Semester as part of my B.Tech. This project uses the cropped image set of UTKFace dataset for age and gender detection. The technique used is Convolutional Neural Networks (CNN) and the basic architecture is inspired by VGG-16 model.

atm-transactions-batch-etl icon atm-transactions-batch-etl

Batch ETL pipeline using Apache Sqoop, Apache PySpark, Amazon S3 and Amazon RedShift to analyze ATM withdrawl behaviours to optimally manage the refill frequency.

bike-sharing-prediction icon bike-sharing-prediction

Multiple Regression model building with Sklearn and statsmodels and analysis of relevant predictors using P-values and VIF

credit-eda-case-study icon credit-eda-case-study

Extensive EDA Case study of Loan applications of customers based on various factors and identifying the trends in Defaulters and Non Defaulters

java-logicbuilding icon java-logicbuilding

A collection of the DSA problems solved in Java as part of DSA course by Coding Ninjas

loan_status icon loan_status

This notebook uses different classification models to predict how many customers of a bank will pay the loan and how many will be defaulters.

medical-image-denoising icon medical-image-denoising

This is the mini project carried out during the summer of 2020 as part of the requirement for B.Tech curriculum. A convolutional autoencoder model for denoising images . Here I have used the Mini-Mias mammography dataset

store-sale-demand-forecast icon store-sale-demand-forecast

Demand Forecasting is the process in which historical sales data is used to develop an estimate of an expected forecast of customer demand. I worked on the Store Item Demand Forecasting dataset available at Kaggle (https://www.kaggle.com/c/demand-forecasting-kernels-only) . The dataset consists of 10 stores and 50 items and their respective sales . In my project i used the plotly and seaborn visualization libraries for plotting which are an excellent tool to get insights into the data. Feature engineering was performed to get the right features for predicting the sales.I used the following ML models : Gradient Boosting Regressor ,Decision Tree Regressor ,Linear SVR ,Random forest Regressor and compared the performance . Finally, deep learning implementation is also done using LSTM.

titanic-survival-prediction icon titanic-survival-prediction

Titanic dataset consists of the passenger details on the Titanic and if they survived or not. Different classifiers are used to predict the survival status of the passengers in the train set and their accuracy noted and the model with best classification accuracy is used to predict the survival status on the test set.

uber-pickups icon uber-pickups

This project depicts the visualization of Uber pickup data in New York city and uses the Neighborhoods JSON file of New York city and ML algorithms to predict the no. of pickups in each neighborhood.

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