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Artificial Intelligence Engineer
Willingboro, NJ
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As a Senior Data Engineer at Client, you will be a key member of the data engineering team, responsible for designing, building, and maintaining our data environment. You will collaborate closely with fellow data engineers, ML teams, reporting analysts, and software engineers to ensure our data pipelines are efficient, scalable, and reliable. The Data Engineer is a forward-thinking innovator who understands how to implement data solutions for next-generation challenges by working directly with the business to understand their data needs. Your work will help optimize activities across multiple functions such as pricing, warehousing, and procurement, driving data-driven decisions and operational efficiency throughout the organization.
ESSENTIAL DUTIES AND RESPONSIBILITIES
Architect and scale data platforms
design and maintain distributed data systems (batch + streaming), ensuring reliability, performance, and cost efficiency
Lead end‑to‑end data pipeline development
build, optimize, and monitor ETL/ELT pipelines that support analytics, ML training, and real‑time inference workloads
Enable machine learning workflows
collaborate with data scientists to deliver feature pipelines, model training environments, and production inference systems
Own data quality and governance
define standards for data validation, lineage, cataloging, and compliance across the organization
Partner with cross‑functional teams
work with product, analytics, and ML teams to translate business needs into scalable data solutions
Operational excellence
manage CI/CD for data and ML pipelines, implement observability, and ensure SLAs for mission‑critical data services
Evaluate and integrate new technologies
assess tools for data processing, orchestration, storage, and MLOps; lead POCs and production rollouts
Build and maintain advanced data systems that bring together data from disparate sources in order to enable decision makers
Design, develop, and maintain scalable data pipelines and ETL processes using Databrick, azure data factory, SQL and Python
Build pipelines and prepare data for use by data scientists, data analysts, and other data systems
Take a solution-oriented problem-solving approach to develop creative solutions for business needs by partnering with business leaders and subject matter experts
Leverage cloud infrastructure and metadata driven frameworks to deliver value and scalability
May be modified from time to time. Other duties, tasks and work may be assigned METRICS
Consistently meet monthly deadlines and objectives as agreed and typically described in monthly reviews or through other project planning efforts
Handle ongoing projects and day-to-day demands that are not identified in formal monthly objectives in a timely and accurate manner
Adherence to any related budget expenses
Adherence to/achievement of business objectives described in project benefit analyses AI-Native Development & Coding Deployment
Incorporate AI-powered developer tools (e.g., GitHub Copilot, Cursor, Claude Code) to accelerate code scaffolding, boilerplates, and refactoring
Govern the deployment pipeline by maintaining ultimate accountability for the security, extensibility, and clarity of AI-generated code
Automate test suites using Generative AI to programmatically generate edge-case validation checks, regression testing, and data quality rules.
Manage continuous integration and zero-touch deployment (CI/CD) via , , or Jenkins, using AI to debug execution failures and draft deployment manifests
Implement rollback strategies and reversible migration practices for schema modifications developed through automated workflows
Build automated anomaly detection and schema drift monitoring alerts into critical business pipelines
Enforce data governance standards, maintaining clear lineage tracking and access controls across cloud layers
QUALIFICATIONS
Bachelor s degree in computer science, Engineering, or related field discipline preferred
Minimum 10 years experience delivering data engineering solutions on a cloud platform
Minimum 10 years experience implementing modern designs using at least one cloud-based solution
Minimum 10 years experience with SQL or NoSQL databases
Minimum 10 years experience with at least one programming language, with a strong preference towards Python
KNOWLEDGE & SKILLS REQUIRED
Advanced level proficiency with at least one ETL / data orchestration technology such as Azure Data Factory, SSIS, Informatica
Experience in cloud-based data warehousing and data lake solutions such as Databricks, Snowflake, or Redshift
Expertise with SQL, database design and data structures (star/snowflake schemas, de/normalized design)
Familiarity with DevOps tools such as git, TFS, CI/CD, Jira
Fundamental understanding of big data, open source, and data streaming concepts
Fundamental understanding of implementation of MLOps best practices
Familiarity with packaged software data extraction from systems such as NetSuite, Profit21 ERP as well as Salesforce CRM.
Experience sub-setting data into cube structures for business use in data reporting and analytics.
Ability to think strategically and provide recommendations utilizing traditional and modern architectural components based on business needs
Excellent written and verbal communication skills along with strong desire to work in cross functional teams. Ability to present extremely complex technical information in a business-friendly manner
A passion for staying up to date with the latest trends and advancements in the field
Team player who can coach and be coached as needed. Openness to adapting your approach for the betterment of the team
Strong technical ability and eagerness to learn new technologies and skills
Attitude to thrive in an entrepreneurial, fast-paced environment
EDUCATION & EXPERIENCE
High School Diploma or equivalent required
BS in computer science, statistics, or operations research or related technical discipline required
Minimum 10 years experience in an analytics or data engineering role.