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Constellation

Sr. Data Scientist

Constellation, Chicago, Illinois, United States, 60290

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Overview

Sr. Data Scientist role at Constellation. Primary Purpose Of Position

Apply the appropriate data science or analytical methods to extract knowledge and insights from data, which may take the form of time-series (power plant equipment data, environmental data or other), structured (relational data stores), and unstructured (text and multimedia) data sets. Closely collaborate with various internal stakeholders, information architects, data engineers, project/program managers, and other teams to turn data into critical information to inform decision making. Mine big and small data for insights, using advanced statistics and machine learning methods. Validate findings with the business by sharing analysis outputs in a way that can be understood by business stakeholders. Fill the role of a subject matter expert in the areas of artificial intelligence, machine learning, feature engineering, data mining, and data manipulation/storage. Demonstrate commitment to continuous learning and professional development in technical subject matter. Share knowledge with team members, and business stakeholders, and IT partners. Collect, cleanse, standardize and analyze data from a variety of internal and external sources. Produce novel insights to help inform business actions using statistical modeling and machine learning techniques on complex data-sets on the order of several terabytes or petabytes. Primary Duties And Accountabilities

Develop key predictive models that lead to delivering reduced overall annual expense for nuclear, performance improvement, and optimize specific performance criteria. Develop and recommend data sampling techniques, data collections, and data cleaning specifications and approaches. Apply missing data treatments as needed. Analyze data using advanced analytics techniques in support of process improvement efforts using modern analytics frameworks, including but not limited to Python, R, Scala, or equivalent; Spark, Hadoop file system and others Access and analyze data sourced from various Company systems of record. Support the development of strategic business and program implementation plans. Access and enrich data warehouses across multiple Company departments. Build, modify, monitor and maintain high-performance computing systems. Provide expert data and analytics support to multiple business units Work with stakeholders and subject matter experts to understand business needs, goals and objectives. Work closely with business, engineering, and technology teams to develop solutions to data-intensive business problems and translate them into data science projects. Collaborate with other analytic teams across Constellation on big data analytics techniques and tools to improve analytical capabilities. Minimum Qualifications

Education: Bachelor's degree in a Quantitative discipline. Ex: Data Science, Data Analytics, Applied Mathematics, Statistics, Computer Science, Operations Research, or related field Experience: Between 5-8 years of relevant experience developing hypotheses, applying machine learning algorithms, validating results to analyze large datasets and extract actionable insights is required. Previous research or professional experience applying advanced analytic techniques to large, complex datasets. Analytical Abilities: Strong knowledge in at least two of the following areas: machine learning, artificial intelligence, statistical modeling, data mining, information retrieval, or data visualization. Technical Knowledge: Proven experience in developing and deploying predictive analytics projects using one or more leading languages (Python, R, Scala, etc.). Communication Skills: Ability to translate data analysis and findings into coherent conclusions and actionable recommendations to business partners, practice leaders, and executives. Strong oral and written communication skills. Preferred Qualifications

Education: Masters, or PhD in a Quantitative discipline. Experience: Prior exposure to data structures pertaining to power generating plant-related equipment and systems, as well as organizational performance data related to the nuclear power industry. Prior exposure to the nuclear, power generation or broader energy sector. Prior exposure to the full spectrum of data science lifecycle, including data acquisition, maintenance, processing, analysis, and communication. Analytic Abilities: Solid understanding of relevant theories in machine learning, statistics, probability theory, data structures and algorithms, optimization, etc. Technical Knowledge: Expert level coding skills (Python, R, Scala, SQL, etc) Proficiency in database management and large datasets: create, edit, update, join, append and query data from columnar and big data platforms. Communication Skills: Ability to translate executive and analytics leaders' vision and guidance into methods and analytics. Strong time management and presentation skills. Seniority level

Mid-Senior level Employment type

Full-time Job function

Engineering and Information Technology Industries

Utilities

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