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  • Senior Data Scientist

    Insight Global (Findlay, OH)



    Apply Now

    Job Description

    Leads multiple data science projects ensuring alignment with business goals.

     

    Develops predictive models and integrates them with Business Intelligence tools.

     

    Develops and maintains data pipelines for efficient data retrieval and processing. Collaborates with applications and data engineering teams for deploying models at scale.

     

    Mentors junior data scientists in model development and data handling.

     

    Engages with Senior Leadership to inform strategic decisions using business intelligence insights.

     

    Researches and adopts cutting-edge technologies and methodologies in data science.

     

    Manages stakeholder expectations and delivers actionable solutions.

     

    Oversees data processing pipelines ensuring data quality and consistency.

     

    Drives ethical considerations in model deployment and data utilization.

     

    Collaborates with external partners, research institutions, and subject matter experts to gather domain-specific knowledge and datasets.

     

    Performs exploratory data analysis to identify patterns, insights, and communicate findings.

     

    Engage in the ideation and prototyping of new solutions to meet emerging business requirements.

     

    Utilize advanced machine learning techniques (e.g., deep learning, NLP, computer vision, reinforcement learning) to create innovative solutions.

     

    Skills

     

    Artificial Intelligence (AI) and Machine Learning (ML) - Understanding of AI/ML concepts, algorithms, and platforms to design architectures that support intelligent systems and enable AI-driven applications.

     

    Business Domain Knowledge - Understanding of business processes, industry trends, and market dynamics to provide relevant and actionable insights for strategic decision-making.

     

    Communication and Collaboration - Excellent communication skills to effectively interact with stakeholders, gather requirements, present architectural proposals, and collaborate with cross-functional teams.

     

    Data Analysis - The process of measuring and managing organizational data, identifying methodological best practices, and conducting statistical analyses.

     

    Data Ethics & Responsible Innovation - Knowledge of ethical considerations related to data usage, data-driven technologies, and strategies to mitigate biases in data-driven decision-making.

     

    Data Mining and Extraction - Data mining is sorting through data to identify patterns and establish relationships. Data mining parameters include: Association - looking for patterns where one event is connected to another event Sequence or path analysis - looking for patterns where one event leads to another later event Classification - looking for new patterns [May result in a change in the way the data is organized but that's ok] Clustering - finding and visually documenting groups of facts not previously known Forecasting - discovering patterns in data that can lead to reasonable predictions about the future Data mining techniques are used in mathematics, cybernetics, and genetics. Web mining, a type of data mining used in customer relationship management [CRM], takes advantage of the huge amount of information gathered by a Web site to look for patterns in user behavior.

     

    Data Monetization and Data Science - Familiarity with data monetization strategies and techniques, such as data commercialization, data marketplaces, and data value realization.

     

    Natural Language Processing - Proficiency in analyzing and extracting insights from unstructured text data, including sentiment analysis, topic modeling, and language understanding.

     

    Problem-Solving and Analytical Thinking - Strong problem-solving skills to identify architectural challenges, analyze requirements, evaluate options, and propose effective solutions.

     

    Reporting and Dashboarding - The ability to access information from databases, forms, and other sources, and prepare reports according to requirements.

     

    Statistical Analysis - Statistical Analysis is used in support of decision-making and includes fundamental principles such as data collection and sampling, random variable types and probability distributions, sampling, and population distributions, making estimations from samples, hypothesis testing, and statistical process control.

     

    We are a company committed to creating diverse and inclusive environments where people can bring their full, authentic selves to work every day. We are an equal opportunity/affirmative action employer that believes everyone matters. Qualified candidates will receive consideration for employment regardless of their race, color, ethnicity, religion, sex (including pregnancy), sexual orientation, gender identity and expression, marital status, national origin, ancestry, genetic factors, age, disability, protected veteran status, military or uniformed service member status, or any other status or characteristic protected by applicable laws, regulations, and ordinances. If you need assistance and/or a reasonable accommodation due to a disability during the application or recruiting process, please send a request to [email protected] learn more about how we collect, keep, and process your private information, please review Insight Global's Workforce Privacy Policy: https://insightglobal.com/workforce-privacy-policy/.

     

    Skills and Requirements

     

    Bachelor’s Degree in Information Technology or related field

     

    5+ years of relevant experience required in Data Science - looking for someone coming from a more traditional data science background

     

    Expertise in Python and proficiency in ML frameworks (TensorFlow, PyTorch, scikit-learn).

     

    Deep understanding of ML algorithms (supervised, unsupervised learning, and deep learning) and their applications.

     

    Strong problem-solving, critical thinking, and analytical capabilities

     

    Experience working as a Data Scientist in a mid/larger sized environment

     


    Apply Now



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