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Staff Data Scientist - job 1 of 2

What you'll do...

Position: Staff Data Scientist

Job Location: 702 SW 8th Street, Bentonville, AR 72716

Duties: Data Source Identification: Support the understanding of the priority order of requirements and service level agreements. Help identify the most suitable source for data that is fit for purpose. Perform initial data quality checks on extracted data. Data Strategy: Understand, articulate, and apply principles of the defined strategy to routine business problems that involve a single function. Model Assessment and Validation: Identify the model evaluation metrics. Apply best practice techniques for model testing and tuning to assess accuracy, fit, validity, and robustness for multi-stage models and model ensembles. Data Visualization: Generate appropriate graphical representations of data and model outcomes. Understand customer requirements to design appropriate data representation for multiple data sets. Work with User Experience designers and User Interface engineers as required to build front end applications. Present to and influence the team and business audience using the appropriate data visualization frameworks and conveys clear messages through business and stakeholder understanding. Understanding Business Context: Provide recommendations to business stakeholders to solve complex business issues. Develop business cases for projects with a projected return on investment or cost savings. Translate business requirements into projects, activities, and tasks and aligns to overall business strategy and develops domain specific artifact. Serve as an interpreter and conduit to connect business needs with tangible solutions and results. Identify and recommend relevant business insights pertaining to their area of work. Tech. Problem Formulation: Translate/ co-own business problems within one's discipline to data related or mathematical solutions. Identify appropriate methods/tools to be leveraged to provide a solution for the problem. Share use cases and gives examples to demonstrate how the method would solve the business problem. Analytical Modelling: Select appropriate modelling techniques for complex problems with large scale, multiple structured and unstructured data sets. Select and develop variables and features iteratively based on model responses in collaboration with the business. Conducts exploratory data analysis activities (for example, basic statistical analysis, hypothesis testing, statistical inferences) on available data. Identify dimensions and designs of experiments and create test and learn frameworks. Interpret data to identify trends to go across future data sets. Create continuous, online model learning along with iterative model enhancements. Develop newer techniques (for example, advanced machine learning algorithms, auto ML) by leveraging the latest trends in machine learning, artificial intelligence to train algorithms to apply models to new data sets. Guide the team on feature engineering, experimentation, and advanced modelling techniques to be used for complex problems with unstructured and multiple data sets (for example, streaming data, raw text data). Model Deployment and Scaling: Deploy models to production. Continuously log and track model behavior once it is deployed against the defined metrics. Identify model parameters which may need modifications depending on scale of deployment. Code Development and Testing: Write code to develop the required solution and application features by determining the appropriate programming language and leveraging business, technical, and data requirements. Create test cases to review and validate the proposed solution design. Create proofs of concept. Test the code using the appropriate testing approach. Deploy software to production servers. Contribute code documentation, maintain playbooks, and provide timely progress updates.

Minimum education and experience required: Master’s degree or the equivalent in Statistics, Economics, Analytics, Mathematics, Computer Science, Information Technology or related field plus 2 years of experience in analytics or related experience; OR Bachelor’s degree or the equivalent in Statistics, Economics, Analytics, Mathematics, Computer Science, Information Technology or related field plus 4 years of experience in analytics or related experience; OR 6 years of experience in analytics or related experience.

Skills required: Must have experience with: Coding in object-oriented programming language Python to build models and applications; Developing Supervised and Unsupervised Learning algorithms using Scikit-learn, Matplotlib, Numpy, Pandas; Data manipulation, data processing, exploratory data analysis (EDA) using Pandas, Seaborn, and SAS; Building dashboard for post-processing of simulation results in Python, PowerBI or Tableau; Sourcing data using SQL in different platforms such as BigQuery or relational database; Statistics and probability solutioning suing Scipy.stats and Statsmodels in Python; Database design to store the data generated from internally built platform using SQLite; Developing front-end solution using CSS, HTML, and Plotly; Utilizing ensemble techniques such as boosting, bagging, stacking to get strong and accurate models; Model validation and evaluation using metrics and models in Scikit-learn framework; Developing various AI/ML models and algorithms in the back end using Scikit-learn, Tensorflow, PyTorch and Keras; Building API to web-scrape data and pre-process layout / asset data; Performing analytic modeling, predictive modeling, regression analysis, hypothesis testing, ANOVA, and t-test etc. using Scikit-learn, Scipy.stats, and Statsmodels to get business insights; Building Agent-based model or simulation and performing Monte Calo simulations; and Solving optimization problems using Dynamic Programing or Linear Programing by utilizing the statistical programing language (Python / R / Matlab). Employer will accept any amount of graduate coursework, graduate research experience or experience with the required skills.

Wal-Mart is an Equal Opportunity Employer.

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What You Should Know About Staff Data Scientist, Walmart

Join our dynamic team at Wal-Mart as a Staff Data Scientist in Bentonville, AR, where you will play a crucial role in driving data-driven decision-making across our organization. In this position, you will dive deep into data source identification, ensuring we select the most fitting options for analysis while performing essential quality checks on extracted data. You’ll be instrumental in shaping our data strategy, applying your expertise to solve complex business problems and crafting compelling business cases with measurable returns on investment. Your analytical skills will shine as you assess models’ accuracy and robustness, and you will curate visual representations that simplify complex data for our storied stakeholders. Together with UX designers and engineers, you will translate data insights into user-friendly applications. Your understanding of business contexts will not only help you deliver actionable recommendations but also position you as a key player in bridging the gap between technical solutions and business needs. You'll have the opportunity to leverage cutting-edge technologies in machine learning and artificial intelligence to train algorithms capable of addressing diverse data challenges. This role is perfect for data enthusiasts eager to take their skills to the next level and make a tangible impact in a fast-paced environment. If you are passionate about unleashing the power of data, we want to hear from you!

Frequently Asked Questions (FAQs) for Staff Data Scientist Role at Walmart
What are the main responsibilities of the Staff Data Scientist at Wal-Mart?

The Staff Data Scientist at Wal-Mart is responsible for data source identification, data quality checks, model assessment, and validation. You will also engage in data visualization and provide insights that help solve complex business issues. Additionally, you will translate business requirements into actionable projects, ensuring they align with our overarching strategy.

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What qualifications do I need to apply for the Staff Data Scientist position at Wal-Mart?

Candidates for the Staff Data Scientist role at Wal-Mart need either a Master’s degree in Statistics, Economics, or a related field along with two years of experience, or a Bachelor’s degree with four years of relevant experience. Alternatively, a total of six years in analytics or related fields is acceptable.

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What skills are required for a Staff Data Scientist at Wal-Mart?

The Staff Data Scientist at Wal-Mart should be proficient in Python, particularly in object-oriented programming, and familiar with machine learning libraries such as Scikit-learn and TensorFlow. Experience in data manipulation using Pandas, building dashboards in PowerBI, and working with SQL databases is crucial.

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How does Wal-Mart support the continuous learning and development of Staff Data Scientists?

Wal-Mart champions professional growth and offers numerous resources for continuous learning, including workshops, mentorship programs, and access to the latest tools and technologies in machine learning and analytics to ensure that our Data Scientists keep their skills sharp and stay ahead in the industry.

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What does the data visualization aspect of the Staff Data Scientist role entail at Wal-Mart?

As a Staff Data Scientist at Wal-Mart, you will be responsible for generating appropriate graphical representations of data and model outcomes. This involves understanding customer requirements to design impactful data displays and ensuring the visuals convey clear messages to various stakeholders.

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Common Interview Questions for Staff Data Scientist
Can you explain the process of model validation used in your previous roles?

In my previous roles, model validation involved assessing the model's accuracy and robustness by determining the correct evaluation metrics and applying best practices for model testing. For instance, I used techniques like cross-validation to ensure that the model performs well on unseen data, which is crucial for reliable predictions.

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Which programming languages are you most proficient in for data science tasks?

I am most proficient in Python, utilizing it for coding models and applications. My experience includes using libraries like Pandas for data manipulation and Scikit-learn for building and validating machine learning models, alongside SQL for data sourcing.

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How do you approach exploratory data analysis (EDA) in your projects?

My approach to EDA involves using statistical techniques to summarize the main characteristics of the data. I often utilize libraries like Pandas and Seaborn to visualize trends and patterns. I focus on understanding the underlying data distributions and relationships which guide subsequent modeling efforts.

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Can you describe a time when your data insights led to a significant business change?

I once analyzed customer purchase data to identify a drop-off point in the sales funnel, and my insights led the team to adjust product placement strategies, which increased conversions by 15%. This experience underscored the importance of aligning data analysis with business objectives.

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What techniques do you find effective for feature engineering in machine learning models?

I believe that thorough exploratory analysis helps identify impactful features. Using domain knowledge, I create interaction variables and leverage techniques like one-hot encoding for categorical variables, which often improves model performance significantly.

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How familiar are you with big data technologies and environments?

I have hands-on experience with big data technologies like Google BigQuery and have worked with large-scale datasets in cloud environments. My work involved sourcing and processing data efficiently, ensuring the scalability of solutions as data volumes grew.

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What challenges have you faced while deploying machine learning models, and how did you overcome them?

One major challenge was integrating a model into a production environment while ensuring its performance met operational standards. I addressed this by implementing rigorous logging and monitoring post-deployment, allowing us to tweak model parameters based on real-time performance analytics.

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In your opinion, how important is collaboration with cross-functional teams in data science roles?

Collaboration is critical in data science roles. Working with cross-functional teams, such as UX designers and business stakeholders, ensures that data insights are translated into actionable strategies and user-friendly applications, maximizing the impact of our work.

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How do you stay updated with the latest trends and tools in data science?

I regularly participate in online courses, webinars, and industry conferences to stay current with trends and tools in data science. Additionally, I engage with professional communities and read research papers to integrate innovative methodologies into my work.

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What methods do you use to ensure data integrity throughout your analysis?

To ensure data integrity, I perform thorough data quality checks at each stage of analysis, including validating datasets before they are used in modeling. Tools like Pandas help in data cleaning, while consistent documentation practices allow for reproducibility and traceability in my work.

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