Tyson Foods
Posted 1d ago

Senior IT Data Engineer (R0465160 Senior IT Data Engineer - Python/SQL (Onsite)

Tyson Foods
Springdale, Arkansas, United States
OnsiteFull Time
Responsibilities
  • owning data strategy
  • architecting data solutions
  • mentoring engineers
Requirements
  • Bachelor's degree or relevant experience and 3+ years of practical experience. Requires expert Python and SQL skills
  • Advanced data engineering, cloud, AI
  • Governance, and technical leadership expertise
Technical tools mentioned
PythonSQLAWSGCPAzureAirflowDagsterdbtKafkaFlinkDelta LakeIcebergSnowflakeBigQueryDockerK8sTerraformDatabricksPub/SubCI/CDRAGLLMOps

Job description

Internal Management & Management Support Applicants:

Automatic notification to your current manager will be initiated upon selection for interview. This applies to all current P or M level candidates.

Relocation Assistance Eligible:

No

Referral Payout Eligible:

Yes

Continue growing with our family. 

Our team members make it happen. If you want to continue to grow in a new role internally and see a position that looks right for you, we encourage you to apply!


Thanks for your commitment to Tyson Foods. 

Management Level:

P4

The Senior IT Data Engineers are experts in data streaming, building data pipelines that support real-time data refreshes and are cost-optimized for computing resources. They deeply understand data security, implementing row-level and column-level security measures. This role typically involves leading the implementation of complex projects, using advanced big data technologies, and ensuring robust data pipeline orchestration across multiple systems.
 

Essential Duties and Responsibilities 

  • Own and drive the overall data strategy, including the multi-quarter technical roadmap, platform architecture, and data engineering standards. 

  • Architect end-to-end data solutions across cloud platforms (AWS, GCP, or Azure), setting standards for orchestration (Airflow, Dagster), transformation (dbt), streaming (Kafka, Flink), and storage (Delta Lake, Iceberg, Snowflake, BigQuery). 

  • Own the enterprise data modeling strategy — crafting scalable models using dimensional, multi-dimensional, and advanced normalization techniques, with enterprise-wide documentation and metadata governance. 

  • Define API design standards and data contracts to ensure reliable, well-governed interfaces between data producers and consumers. 

  • Establish enterprise-level data governance, security, and compliance frameworks across all data and AI systems, including access controls, cataloging, and lineage. 

  • Define and enforce CI/CD standards for data pipelines, containerized architectures (Docker, K8s), and infrastructure as code (Terraform). 

  • Drive data observability practices and platform reliability at enterprise scale. 

  • Drive build-vs-buy evaluations for data and AI tools, considering TCO, vendor lock-in, scalability, and organizational fit; manage vendor relationships. 

  • Own or co-own infrastructure budget and capacity planning for data platform resources; optimize cloud costs at the organizational level. 

  • Define and drive the organization's agentic AI strategy, architecting enterprise- scale multi-agent systems, autonomous data pipelines, and RAG/knowledge graph platforms. 

  • Establish AI governance frameworks, including ethics policies, bias detection, safety guardrails, security standards (prompt injection, data exfiltration, PII), and compliance with emerging regulations (e.g., EU AI Act). 

  • Establish LLMOps practices at scale — model deployment, prompt versioning, A/B testing, performance monitoring, drift detection, and cost optimization. 

  • Design human-in-the-loop escalation paths for critical AI-driven decisions, ensuring appropriate oversight. 

  • Lead AI platform evaluation and integration, including TCO analysis, data residency, and SLA requirements for agentic frameworks. 

  • Set software engineering best practices — code review standards, design patterns, technical debt management, and documentation. 

  • Advocate for and lead adoption of data mesh and data-as-a-product principles. 

  • Mentor the engineering team on data engineering, data modeling, and AI best practices. 

  • Perform other assigned job-related duties that align with our organization's vision, mission, and values and fall within your scope of practice. 

Qualifications 

Education: Bachelor's Degree or relevant experience. 

Preferred Certification(s): AWS Solutions Architect Professional, Google Professional 

Data Engineer, Azure Solutions Architect Expert, Databricks Certified Data Engineer 

Professional, or equivalent. 

Experience: 3+ years of relevant and practical experience. 

Special Skills 

  • Expert proficiency in Python and SQL for data engineering at scale. 

  • Expertise in modern data platforms (Databricks, Snowflake, BigQuery), lakehouse architectures (Delta Lake, Iceberg), and streaming (Kafka, Flink, Pub/Sub). 

  • Deep expertise in at least one major cloud platform with cross-cloud awareness. 

  • Mastery of orchestration, transformation (dbt), containerization (Docker, K8s), and IaC (Terraform). 

  • Advanced enterprise data modeling, warehousing, data contracts, and API design. 

  • Expertise in CI/CD, data observability, governance, data mesh, and platform reliability. 

  • Experience in technical roadmap ownership, build-vs-buy evaluation, and budget/capacity planning. 

  • Expert-level knowledge of agentic AI architectures, LLMOps, RAG, knowledge graphs, and AI governance/safety/security. 

Soft Skills 

  • Leadership: Owning and driving data and AI strategy across the organization. 

  • Strategic Vision: Translating business objectives into actionable technical roadmaps. 

  • Stakeholder Management: Building relationships with partners and executive leadership. 

  • Communication: Presenting complex data and AI concepts to board-level audiences. 

  • Mentorship: Developing the data engineering team's data and AI competencies. 

  • Decision-Making: Making high-impact choices on architecture, platforms, and investments. 

  • Change Management: Guiding the organization through data and AI transformations. 

  • Innovation & Thought Leadership: Driving industry best practices in data engineering, modeling, and agentic AI. 

  • Negotiation: Balancing technical requirements with business needs and resource constraints. 

**Not eligible for visa sponsorship **

** Not eligible for relocation assistance **

Work Shift:

1ST SHIFT (United States of America)

For Professional Management levels, internal applicants should either upload a resume to their application OR complete their application fully showing current and past work experience in the sections provided.


The successful candidate(s) must be willing and able to perform the physical requirements of the job with or without a reasonable accommodation.


Tyson is an Equal Opportunity Employer. All qualified applicants will be considered without regard to race, national origin, color, religion, age, genetics, sex, sexual orientation, gender identity, disability or veteran status.


We provide our team members and their families with paid time off; 401(k) plans; affordable health, life, dental, vision and prescription drug benefits; and more.


CCPA Notice. If you are a California resident, and would like to learn more about what categories of personal information we collect when you apply for this job, and how we may use that information, please read our CCPA Job Applicant Notice at Collection, click here.

About Tyson Foods

Processes and markets chicken, beef, pork, and prepared foods.

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