Data Scientist
Listed on 2026-07-24
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IT/Tech
Machine Learning/ ML Engineer, Data Scientist, Data Analyst
Headquartered in Birmingham, Alabama, Moultrie () is the leader in game feeders and cellular camera innovation, building products used by hunters, property owners, and others for real-time remote monitoring.
We take pride in developing deep user understanding, obsessing about the details, and going the extra mile to show our users we love them. Moultrie is customer-driven – hardware, software, marketing, and customer success teams collaborate to deliver a quality user experience.
We are guided by the following principles: Customer Obsession.;
Excellence is the Standard.;
Bias for Action.;
Act Boldly.;
Deliver Results.;
Hire and Develop the Best.;
Be Curious and Learn.;
Win as a Team
Moultrie is looking for a Data Scientist to join the growing Data and Analytics Team. This team owns the development of insights from extraction that power decision-making across Moultrie. This role will build the predictive and prescriptive modeling capabilities that sit on top of the foundational data layer, surface actionable insights and recommendations within BI products and downstream systems. You will own the statistical modeling and feature engineering that exists in the Data.
Data Layer & Feature Store:
Snowflake
Model Deployment:
Snowflake ML Functions, Snowpark
Development:
Python, SQL
Feature store:
Snowflake
Typical work includes building and maintaining feature stores Snowflake/dbt, training and validating predictive models against curated datasets, and delivering model outputs as attributes made available in datasets ready for downstream tools.
The ideal candidate has hands‑on experience with applied predictive modeling in a business context (churn prediction, customer health scores, propensity scoring) and can contribute to the data work required to support it. This role will work closely with the other members of the Data and Analytics team as well as business stakeholders to align work with highest business impact.
Job ResponsibilitiesPredictive and Prescriptive Modeling
Design, build, and maintain predictive models that address defined business questions (customer churn, subscription health, purchase propensity) using data from the foundational layer in Snowflake.
Deliver model outputs as attributes that can integrate cleanly into downstream BI products (Tableau, Streamlit) and activation platforms (Blue Conic, Braze, Triple Whale).
Work with business stakeholders to translate ambiguous questions into scoped modeling problems with defined success metrics.
Communicate model outputs and their business implications clearly to non‑technical audiences.
Track, document, and monitor experiments and deployed models to ensure outputs are reliable, understandable, and reproducible.
Feature Store and Data Engineering
Contribute to the build and maintenance of features in the feature store: defining features, documenting refresh cadence, and ensuring feature pipelines are reliable and tested.
Build and maintain training datasets with clear documentation of assumptions, evaluation windows, and limitations.
Work with data engineers to ensure data models are structured to support feature engineering and model training.
Apply data engineering fundamentals (SQL modelling, version control, documentation) to contribute to the feature store and build statistical models that integrate into the existing foundational tech stack.
Job RequirementsSkills and Qualifications
4+ years of hands‑on experience in data science or a role with significant applied modelling.
Demonstrated experience building and deploying predictive models in a business context.
Strong Python proficiency:
Proven experience using libraries (scikit‑learn, pandas) to build and maintain predictive models.
Experience with classification and regression techniques and the ability to validate model performance using appropriate metrics (precision, recall, AUC, etc.).
SQL proficiency:
Able to write clean, maintainable code for supporting models in Snowflake with support from data engineers.
Experience with Git and standard software development practices: version control, code reviews, branching, and CI/CD basics.
Ability to take an ambiguous business problem and work…
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