Director, Data Engineering & Analytics
: Job Details :


Director, Data Engineering & Analytics

O'REILLY AUTO PARTS

Location: Springfield,MO, USA

Date: 2024-12-12T13:23:48Z

Job Description:

Job Description

The Director of Data Engineering & Analytics will be responsible for leading the execution of a strategic plan designed to enable O'Reilly to leverage data as a strategic, governed asset. The Director owns the data engineering, business intelligence, enterprise data warehousing, and analytics for the enterprise and works closely with all business areas to deliver a range of data and analytical solutions. This role will formulate and implement key technology and architecture decisions across the data platform ecosystem, foster and establish a strong engineering discipline, hire, develop, and build a strong engineering organization. The Director will work cross functionally on a day-to-day basis, manage a diverse team, focus on execution and possess strong problem solving and communication skills.

ESSENTIAL JOB FUNCTIONS

Provide strong leadership, vision and drive the implementation and development of the organization's data platform, data management, and analytics initiatives.

Demonstrate excellent knowledge of data warehouse principles, analytics, and reporting. Be an expert in data engineering, including building cloud data warehouse platforms (e.g., Snowflake, BigQuery), data marts, data science, and data pipelines.

Build and lead high-performing teams. Recruit, develop, and retain top talent in data engineering and analytics globally. Encourage teamwork and knowledge sharing within the team, across departments and countries.

Build a culture of engineering best practices, emphasizing data engineering standards, guidelines, and processes, data quality, documentation, data governance, service level objectives, and data contracts.

Establish and promote operational excellence through code reviews, documentation, CI/CD pipelines, monitoring, code quality, reusability, and maintainability. Build and maintain a robust data engineering toolchain.

Prioritize and manage projects, deliver data solutions on time and within budget, balancing competing priorities.

Foster a data-driven culture, promote data literacy and analytics throughout the organization, encouraging data-informed decision-making.

Create a comprehensive business intelligence and analytics strategy aligned with business goals.

Establish standardized Business Intelligence Center of Excellence model, development and deployment process. Empower business users with self-service BI capabilities and governance model

Design and implement scalable data infrastructure to support international operations. Implement data localization strategies to meet specific country requirements and local data privacy regulations.

Provide technical guidance and mentorship to the data engineering and analytics team. Resolve complex technical challenges and make informed architectural decisions.

Influence and build strong partnerships with business leaders to drive data-driven decision making. Clearly articulate complex technical concepts to both technical and non-technical audiences.

Develop change management plans to drive adoption of new data solutions. Provide training and support to empower users to leverage data effectively.

Establish data observability practices to ensure data reliability and performance. Define and track key metrics to measure data quality and pipeline health.

Develop data storytelling and visualization capabilities to communicate insights effectively.

Implement data governance framework to manage data access, lineage, and compliance.

Protect data assets from unauthorized access or disclosure. Implement robust security measures, including encryption, access controls, and network security.

Ensure compliance with relevant data privacy regulations.

Optimize data storage, processing and consumption costs while maintaining data accessibility and performance.

Manage budgets and resources, optimize resource allocation to achieve business objectives.

Supervise and train staff, including organizing, prioritizing, and scheduling work assignments

All other duties as assigned.

SKILLS/EDUCATION/KNOWLEDGE/EXPERIENCE/ABILITIES

Required:

Bachelor's Degree in Computer Science, Information Technology, or Engineering

10+ years of experience in data warehouse, data migration, data engineering and analytics field

6+ years of successful data engineering, or analytics team management experience, including hiring, team member development, performance management, and delivering results

5+ years managing a team of data analysts/engineers/scientists

3+ years managing a team of architect/principal/staff/lead level team members

Demonstrate a deep understanding of SQL and related databases

Deep knowledge of designing and building highly scalable data warehouses, data pipelines, data modeling, designing data lakes and big data analytics

Experience creating and delivering multi-quarter roadmaps. Demonstrated ability to deliver results in a fast-paced environment.

Prior experience with cloud data warehouse, data streaming platforms and dimensional models

Experience with data ingestion, transformation, orchestration tools like FiveTran, Dbt, AirFlow

Experience with data catalog, governance, quality and observability tools like Alation, Collibra

Strong understanding of data architecture and design principles.

Experience in driving change/transformation through a larger operations focused organization

Experience using Python, Java, or Spark for data processing

Experience working with stakeholders and leaders to define and measure KPIs, service level objectives and other operating metrics

Experience with data visualization and BI tools like Tableau, Looker, Domo

Communication and leadership experience, with experience initiating and driving projects

Proven ability to lead and manage high-performing teams. Strategic thinking and problem-solving abilities.

Strong collaboration skills in order to partner effectively across various levels of the organization

Proven track record of successful communication of analytical outcomes through written communication, including an ability to effectively communicate with both business & tech teams

Desired:

Advanced degree in Computer Science, Information Technology, or related field preferred

Domain experience in retail and experience in the auto parts industry

Proven experience in data stewardship, data governance, or a related role

Ability to clearly articulate vision, mission, and objectives, and adapt the narrative appropriate to the audience

Experience with medallion architecture/data tiers

Knowledge of advanced analytics and machine learning techniques

Hands-on experience with GCP, AWS or Azure cloud platforms

Strong knowledge of data protection regulations, compliance and data management policies

Strong understanding of cloud architecture, cloud storage, compute and hybrid (on-prem and cloud) data pipelines

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