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  • Posted: Sep 25, 2024
    Deadline: Not specified
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    McKinsey & Company is an American worldwide management consulting firm. McKinsey has published the McKinsey Quarterly  funds the McKinsey Global Institute research orga...
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    Data Scientist - QuantumBlack, AI by McKinsey

    Role responsibilities

    • Work on complex and extremely varied data sets from some of the world’s largest organisations to solve real world problems
    • Develop data science products and solutions for clients as well as for our data science team
    • Write highly optimized code to advance our internal Data Science Toolbox
    • Work in a multi-disciplinary environment with specialists in machine learning, engineering and design
    • Focus on modelling by working alongside the Data Engineering team
    • Add real-world impact to your academic expertise, as you are encouraged to write papers and present at meetings and conferences should you wish
    • Take part in R&D (video: R&D at QuantumBlack); attend conferences such as NIPS and ICML as well as data science retrospectives where you will have the opportunity to share and learn from your co-workers
    • Work in one of the most advanced data science teams globally 

    What you’ll learn

    • How successful projections on real world problems across a variety of industries are completed through referencing past deliveries of end to end machine learning pipelines
    • Build products alongside the Core engineering team and evolve the engineering process to scale with data, handling complex problems and advanced client situations
    • Best practices in software development and productionise machine learning by working with our Machine Learning Engineering teams which optimise code for model development and scale it
    • Work with our UX and Visual Design teams to interpret your complex models into stunning and user-focused visualisations
    • Using new technologies and problem-solving skills in a multicultural and creative environment

    Your qualifications and skills

    • Bachelor's, masters or PhD level in a discipline such as: computer science, machine learning, applied statistics, mathematics, engineering or artificial intelligence
    • Up to 3 years of professional experience in applying machine learning and data mining techniques to real problems with copious amounts of data
    • Programming experience (focus on machine learning): R and/or Python (must), SPSS, SAS, Ruby, Hadoop (valued)
    • Data treatment/data mining, e.g. SQL, AWK, Access, Spark, Excel (highly valued)
    • Statistical knowledge is a plus
    • Demonstrated aptitude for analytics
    • Proven record of leadership in a work setting and/or through extracurricular activities
    • Ability to prototype statistical analysis and modeling algorithms and apply these algorithms for data driven solutions to problems in new domains
    • Ability to independently own and drive model development, balancing demands and deadlines
    • Demonstrated aptitude for analytics
    • Good presentation and communication skills, with the ability to explain complex analytical concepts to people from other fields 
    • Willingness to travel

    go to method of application »

    Intern - Analytics Graduate Program 2025

    Your qualifications and skills

    • Recent graduate or 1+ years of experience with the following honors qualifications quantitative/analytical degree (e.g., computer science, information technology, quantitative or actuarial science, engineering, or related fields with an excellent academic record, etc.)
    • Proficient in coding and programming 
    • Interested in gaining professional experience across a wide range of client organizations and business functions
    • Aptitude for analytics and enjoys solving challenging and ambiguous problems
    • Excited about building skills in analytics across data engineering, visualization, optimization and simulations, through rotations in various teams
    • Strong record of leadership and initiative taking

    Method of Application

    Use the link(s) below to apply on company website.

     

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