Demo

Data & Analytics (D&A) Developer II

Business Integra
Greenville, SC Contractor
POSTED ON 8/1/2026
AVAILABLE BEFORE 8/31/2026

Job Title: Data & Analytics (D&A) Developer II
Number of Positions: 1
Job Location: Greenville, South Carolina, United States

Job Description

We are seeking a curious, analytically sharp, and digitally passionate Data Scientist to join the Operations & Strategy team. This is an opportunity to create meaningful impact through data intelligence, advanced analytics, and AI-powered solutions.

As a core member of the team, you will act as a critical bridge between Engineering, business planning, operations, and IT teams. You will define data requirements, determine how data should be structured and utilized, and identify AI/ML solutions that deliver measurable business value.

The role will support centralized business operations and program reporting by providing harmonized insights, predictive analysis, and scenario-based outcomes to stakeholders. You will develop scenario-planning models, analyze project execution data, identify gaps between planned and actual performance, and support proactive, data-driven decision-making.

Required Technical Skills

Core Data Science & Machine Learning

  • Strong proficiency in Python for data analysis, statistical modeling, and machine learning development, including pandas, NumPy, scikit-learn, SciPy, curve fitting, and object-oriented programming.
  • Experience developing scenario-planning and what-if analysis models.
  • Foundational to intermediate knowledge of machine learning frameworks and methodologies, such as scikit-learn, XGBoost, or similar tools.
  • Understanding of model-validation metrics, including R , MAE, RMSE, cross-validation, and custom scoring functions.
  • Strong SQL skills, including querying, table joins, data manipulation, and interpretation of complex queries.
  • Knowledge of statistical modeling, hypothesis testing, and experimental design.

Data Management

  • Ability to independently explore enterprise datasets and identify patterns, gaps, and improvement opportunities.
  • Experience cleaning, validating, and standardizing data across multiple systems.
  • Experience integrating datasets from ERP, CRM, cloud, and enterprise platforms.
  • Strong analytical ability to identify anomalies, outliers, errors, and unusual data patterns.

AI & Advanced Analytics

  • Understanding of semantic data models and data modeling across diverse systems.
  • Experience with forecasting, predictive analytics, and scenario modeling.
  • Familiarity with Large Language Models (LLMs) and basic prompt-engineering techniques for business applications.

Dashboard & Data Logic

  • Ability to review existing dashboards, reports, ML models, and analytical solutions to understand business requirements, design patterns, and underlying data sources.
  • Strong capability to interpret complex SQL queries, data flows, and business logic.
  • Experience tracing data lineage and understanding underlying data structures.
  • Experience collaborating with Data Engineers to implement data requirements across pipelines and infrastructure.

Preferred Skills

  • Experience with TensorFlow, PyTorch, neural networks, or deep-learning applications.
  • Experience with pytest or similar unit-testing frameworks.
  • Knowledge of Primavera P6, Microsoft Project, or similar project-management tools.
  • Familiarity with MLOps, model versioning, experiment tracking, MLflow, or Weights & Biases.
  • Exposure to Azure, AWS, or Google Cloud Platform data-science environments.
  • Experience with advanced LLM applications, including fine-tuning, RAG, or agent frameworks.
  • Understanding of data governance and responsible AI practices.
  • Experience working with enterprise systems such as SAP, Salesforce, Databricks, or similar platforms.

Key Responsibilities

Data Analysis & Intelligence

  • Analyze data from multiple enterprise systems to identify trends, gaps, risks, and opportunities for improvement.
  • Partner with Program Managers and Operations leaders to define data requirements and support business use cases.
  • Transform large structured and unstructured datasets into actionable insights.
  • Perform data-quality assessments and identify and resolve data defects and anomalies.

AI/ML Development

  • Develop and validate machine-learning models supporting demand forecasting, scenario planning, and predictive analytics.
  • Document analytical findings, model performance, assumptions, and data definitions.
  • Collaborate with Data Engineers to implement data requirements and maintain Python-based pipelines for ETL, model training, and automated forecasting.
  • Translate business and technical challenges into clear data-science and AI/ML problem statements.
  • Use LLMs and prompt engineering to develop intelligent tools that improve decision-making and automate workflows.

Scenario Planning & Project Analytics

  • Develop scenario models to evaluate demand forecasts, resource capacity, cost projections, and other business assumptions.
  • Track project execution data across Primavera P6 and other project-management systems.
  • Perform variance analysis between planned and actual performance, including budgets, timelines, resource utilization, and forecasted effort.
  • Develop automated solutions to monitor assumptions and project performance throughout the project lifecycle.
  • Support executive dashboards highlighting performance trends, risks, and projects requiring attention.

Data Ecosystem Optimization

  • Review existing dashboards, analytical models, reports, and data pipelines.
  • Interpret SQL queries, semantic models, and embedded business logic.
  • Support the maintenance and enhancement of existing data solutions.
  • Identify opportunities to improve, optimize, or consolidate reporting and analytics assets.
  • Maintain alignment with established data standards and best practices.

Stakeholder Collaboration

  • Translate complex data findings into clear and actionable insights for technical and non-technical stakeholders.
  • Address internal user questions related to data, analytics, models, and reporting.
  • Support centralized KPI reporting and enterprise-wide analytics initiatives.

Innovation & Continuous Improvement

  • Collaborate with Data Analysts, Data Engineers, and cross-functional teams.
  • Maintain a strong understanding of semantic data models to support consistent data interpretation.
  • Stay current with developments in AI, machine learning, and data science.
  • Recommend innovative approaches to improve data quality, analytics, modeling, and automation.

Essential Soft Skills

  • Strong stakeholder-management and communication skills.
  • Ability to explain complex technical concepts and AI/ML findings in clear business terms.
  • Strong listening and requirements-gathering abilities.
  • Professional, proactive, and solution-oriented communication style.
  • Fluent English communication skills; additional languages are a plus.
  • Strong analytical thinking, problem-solving, logical reasoning, and attention to detail.
  • Technical curiosity and the ability to understand existing models, data pipelines, and analytical solutions.
  • Ability to work effectively across cross-functional, international, and multicultural teams.
  • Strong learning agility and willingness to adopt new technologies.
  • Ownership, accountability, and proactive communication regarding deliverables, risks, dependencies, and escalations.

Salary : $52 - $54

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