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Title Data Analyst Machine Learning
Target Location US-MA-Milton
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Candidate's Name
Boston, MA PHONE NUMBER AVAILABLE EMAIL AVAILABLE LinkedInEDUCATIONNortheastern University, Boston, MA Sep Street Address  - May 2024Master of Professional Studies in Analytics (Concentration: Applied Machine Intelligence) GPA: 3.Street Address
WORK EXPERIENCEBiocon Limited, Hyderabad, India. Apr 2022 - Aug 2022Executive Project AnalystManaged several Greenfield projects in the Electrical and Automation domains, ensuring project completion within time and budget constraints.Conducted risk assessments, implemented safety measures, and ensured a safe working environment for employeesAnalyzing project data using Excel and SQL, identifying areas for improvement, optimizing project efficiency, and achieving an 18% increase in revenue through collaboration with vendors and contractors for timely delivery of equipment and materials.Increasing efficiency by developing automation systems such as SCADA and DCS.Shanvr Life Sciences PVT LTD, Hyderabad, India. Nov 2020 - Mar 2022Junior Data AnalystValidated round trip efficiency for multiple projects by using Python, R, and SQL to conduct extensive research and analysis on energy storage devices and electrochemical batteries.Automated data collection, organization, and pattern recognition in time-series data for economic optimization by creating machine-learning flow battery models in Python and employing R data analysis tools.Evaluated physical models, experimental data, scholarly journals, and internal performance statistics to study electrochemical batteries and energy storage systems using Python, R, and MATLAB. I wrote in-depth reports on my research activities and conclusions.Constructed a C++ flow battery design and operation optimization model using tools like TensorFlow and created a chemistry-neutral bottom-up analysis model in Python.This led to decreased battery costs and widespread usage in the community by distributing them via social media.Created R-based data analysis processes to automatically test and evaluate EV batteries for smart grid deployment.I also predicted the daily production for a 1.2 MW solar installation using data analytics tools and approaches to maximize system reliability.Extracting insights and identifying trends from vast amounts of data to support decision-making and propel business outcomes.Kalven Enterprises, Hyderabad, India Mar. 2018 - Feb. 2020Data Engineer InternContributed to the development of automation tools to optimize account transactions and simulate consumer GST return procedures while working with the Financial Assessment department of the Singapore government.Using DBT, Spark, and Azure, extensive machine learning pipelines were developed in cloud environments.15% increase in decision-making efficiency using Python and MySQL to automate account transaction operations.Created customer lifetime value and marketing mix models with Bayesian frameworks.Used Bayesian techniques to carry out A/B testing to improve retail strategy.Collaborating on ETL procedures with data engineers to guarantee excellent data quality and integrity.CI/CD techniques were integrated with Azure DevOps to enable smooth model deployment.TECHNICAL PROJECTSArbit Inc Sep 2023 - Dec 2023Predictive Modeling & Dashboarding Analysis for the Sneaker Resale Market Python, Machine LearningUtilized advanced data preprocessing and ML algorithms, including regression and clustering, on a 24.5 million rows Arbit Inc. dataset, generating actionable insights for sneaker resale.Developed an interactive dashboard using matplotlib, seaborn, and predictive models like random forests and gradient boosting with 95% accuracy, enhancing decision-making and pricing strategies.Contributed to a 30% profitability increase by leveraging ML techniques for pricing intelligence and data-driven strategies in the sneaker resale market.H&M Fashion Recommendation Python, Recommendation Systems, Deep Learning Sep 2023 - Dec 2023Implemented a recommendation system using clustering techniques to identify hidden patterns in sales data and understand customer and product sub-level groupings.Engineered relevant features to capture local and global trends and deployed item-item collaborative, content-based, and deep learning-based models with a resulting MAP@12 of 0.0345.Schneider Electric Apr 2023  Jul 2023Smart Alarm Management Exploration Python, NLP, Decision TreesReduced the workload of support staff and customers by efficiently classifying and managing more than 100 million Schneider Electric data center alerts using k-means clustering and decision trees.Developed a reliable system to prioritize key warnings using supervised and unsupervised machine learning approaches, which led to a significant 35% reduction in incident resolution time for Schneider Electric's service teams and clientsUtilizing the enormous XN Project dataset, we used Python, Pandas, NumPy, Matplotlib, and Scikit-learn for data preprocessing, analysis, and modeling.We achieved an outstanding 92% accuracy in alarm categorization, which improved operational effectiveness and allowed for more informed decision-makingCar Buying Trend Analysis R, Tableau, Regression Jan 2023  Feb 2023Utilizing statistical analysis techniques such as ANOVA, Tukeys HSD test, and logistic regression to interpret and communicate statistical finding to non-technical stakeholders, essential for effective decision-makingUnderstanding of how age, income, and marital status can influence consumer behavior in automotive industry. Data-driven insights into customer preferences and purchasing behaviors.Demonstrating proficiency in working with large datasets and drawing meaningful conclusions through expertise in statistical software tools such as R, essential for successful data analysisCommercial Property Industry R, Regression, Machine Learning Sep 2022 - Oct 2022Developed multiple regression models to forecast commercial property sales and leasing and to find the optimal model with high accuracy by cleansing and analyzing 0.9 million data samplesProjecting the Big Data Market to be worth $273.4 billion by 2026, as reported by Markets and MarketsUtilizing Big Data in the real estate sector to enable customers to find desired homes, select desired bedroom types, and identify appropriate neighborhoods in any region without the need for physical visitsTECHNICAL KNOWLEDGELanguages : Python, Java, R, MySQLTools/ Technologies : Tableau, Snowflake, Databricks, Git, Airflow, Hadoop, A/B Testing, Discover, Power BI, Docker,ETL, Vertex AI, Microsoft 365ML Algorithms : Regression Algorithms, Decision Trees, Random Forest, SVM, Clustering, RecommendationSystemsFrameworks and Libraries : Numpy, Pandas, Scikit-learn, Matplotlib, Keras, Scipy, Tensorflow, Pytorch, MLflow, PySparkCertifications : AWS Certified Cloud Practitioner, Data Science BootCamp With RSERVICE & LEADERSHIPPart of the National Service Scheme in (2017 - 2020)Organized marathons (Triathlon, Duathlon) and fests (technical and non-technical)President of Power Audit Team (2017 - 2020)  GRIET

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