Fragma data systems pvt ltd | Jobs | Sr SQL Developer/ Data engineer | BigDataKB.com | 11-02-22

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    Job Location: Bangalore/Bengaluru

    Job Overview
    Data & Analytics team is responsible to integrate new data sources and build data models, data dictionaries and machine learning models for the Wholesale Bank.
    The goal is to design and build data products to support squads in Wholesale Bank with business outcomes and development of business insights. In this Job Family we make a distinction between Data Analysts and Data Scientist. Both scientists as analysts work with data and are expected to write queries, work with engineering teams to source the right data, perform data munging (getting data into the correct format, convenient for analysis/interpretation) and derive information from data.
    The data analyst typically works on simpler structured SQL or similar databases or with other BI tools/packages. The Data Scientists are expected to build statistical models or be hands-on in machine learning and advanced programming.
    Role of Data Scientist to support our Corporate banking teams with insights gained from analyzing company data. The ideal candidate is adept at using large data sets to find opportunities for product and process optimization and using models to test the effectiveness of different courses of action. They must have strong experience using a variety of data mining/data analysis methods, using a variety of data tools, building and implementing models, using/creating algorithms and creating/running simulations. They must have banking or corporate banking experience.

    Primary Responsibilities
    Work with stakeholders throughout the organization to identify opportunities for leveraging company data to drive business solutions.
    Mine and analyze data from company databases to drive optimization and improvement of product development, marketing techniques, and business strategies
    Use predictive modeling to increase and optimize customer experiences, revenue generation, ad targeting, and more
    Develop custom data models and algorithms
    Develop processes and tools to monitor and analyze model performance and data accuracy
    Assess the effectiveness and accuracy of new data sources and data-gathering techniques
    Develop company A/B testing framework and test model quality
    Coordinate with different functional teams to implement models and monitor outcomes

    Operating Environment, Framework and Boundaries, Working Relationships
    Develops data products that are fit for purpose by leveraging advanced data and analytical tools and technology in order to help customers to make the best possible financial decision and to make the organization more data driven, taking into account the data privacy legislations and ethical boundaries.
    Combines IT and data management expertise. He / she develops algorithms to apply to external and internal data to predict customer needs and / or developments in markets, industries and the wider financial landscape.
    Linking pin and liaison towards the Data Engineers

    Desired Experience
    6 Years – 10 Years

    Function
    Analytics

    Desired Skills
    Should be comfortable in solving Wholesale Banking domain analytical solution within AI/ML platform

    Knowledge, Skills and Experience
    Master’s or Ph.D. in statistics, mathematics, or computer science
    Experience usingstatistical computer languagessuch as R, Python, SQL, etc.
    Experience in statistical and data mining techniques, including generalized linear model/regression, random forest, boosting, trees,text mining, social network analysis
    Experience working with and creating data architectures
    Knowledge of machine learning techniques such as clustering, decision tree learning, and artificial neural networks
    Knowledge of advanced statistical techniques and concepts, includingregression, properties of distributions, and statistical tests
    6+ years of experiencemanipulating data setsand building statistical models
    Experience using web services: Azure AI/ML , Redshift, S3, Spark, DigitalOcean, etc.
    Experience analyzing data from third-party providers, including Google Analytics, Site Catalyst, Coremetrics, AdWords, Crimson Hexagon, Facebook Insights, etc.
    Experience with distributeddata/computing tools: Map/Reduce, Hadoop, Hive, Spark, Gurobi, MySQL, etc.
    Experience visualizing/presenting data for stakeholders using: Periscope, Business Objects, D3, ggplot, etc.

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