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Metasys

Data Architect Internship

Reposted Yesterday
Remote
Hiring Remotely in United States
Internship
Remote
Hiring Remotely in United States
Internship
Design and govern end-to-end data architecture for an integrated supply-chain e-commerce platform: create data models, build scalable ETL/ELT pipelines, ensure GDPR-compliant data governance, enable real-time analytics, optimize databases, plan retention/archival, and prepare data for LLM fine-tuning and RAG use cases.
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Overview: Data Strategy and Governance

The Data Architect is responsible for designing and governing the end-to-end data landscape of our integrated supply chain e-commerce platform. You will create comprehensive data models, establish robust ETL pipelines to unify data from core systems (MES, WMS, OMS), and architect the infrastructure for real-time analytics, ensuring strict compliance with data privacy regulations like GDPR.

Internship Details

Duration: 3 months
Start Date: Immediate
Location: Remote
Stipend: None initially. Based on your first-quarter performance, you may be offered a paid full-time opportunity, or even be absorbed directly by the client as an FTE.

Key Responsibilities & Core Projects

You will transform raw system data into a structured asset, supporting both operational efficiency and business intelligence.

  • Data Modeling & Design: Design and maintain comprehensive conceptual, logical, and physical data models for all data domains: e-commerce transactions, customer behavior, internal tool usage, and supply chain records.

  • Data Integration (ETL): Architect and implement scalable ETL/ELT pipelines to efficiently aggregate, transform, and load data from disparate sources, including PostgreSQL 15 (MES, WMS, OMS modules) and internal applications.

  • Data Governance & Compliance: Define and enforce data governance policies, focusing heavily on GDPR compliance, data privacy, access control, and data quality standards.

  • Analytics Infrastructure: Design and implement the infrastructure for real-time analytics and business intelligence, ensuring data is readily available and optimized for consumption by reporting tools and the Analytics/BI module.

  • Retention & Archival: Define and plan data retention, archiving, and purging strategies, ensuring long-term data management efficiency and compliance.

  • Database Optimization: Collaborate with SRE and development teams to optimize database schemas and queries for both high transactional throughput and analytical reporting performance.

Required Technologies & Tools

Candidates must possess deep experience in data modeling, integration, and governance across diverse systems:

  • Database Mastery: Expert proficiency in PostgreSQL 15 (schema design, performance tuning, RLS principles) and caching technologies (Redis).

  • Data Warehousing/ETL: Proven experience designing and implementing scalable data pipelines and data warehouse structures.

  • Programming/Scripting: Proficiency in scripting for data transformation and pipeline automation (e.g., Python, SQL).

  • Compliance: Mandatory experience implementing controls for GDPR and other data privacy regulations.

  • Search/Storage: Familiarity with data usage in Meilisearch and object storage systems (MinIO).

AI Agent Focus

You will structure the data assets required to power and train our AI layer.

  • Data for LLMs: Architect the data flow and preparation layer that provides clean, contextually relevant data for LLM fine-tuning, prompt engineering, and Retrieval Augmented Generation (RAG) processes.

  • Interaction Modeling: Design models to capture and track AI agent interactions and outcomes for auditing, performance analysis, and continuous improvement of the multi-agent system.

Success Metrics & Career Path

Performance will be measured by:

  • Data Accuracy/Quality: Measurable improvement in the quality, consistency, and reliability of data used for analytics.

  • Pipeline Efficiency: Speed, stability, and latency of ETL pipelines supporting real-time analytics requirements.

  • Compliance Audit: Successful implementation and auditing of data governance and GDPR policies.

Mentorship Structure: Reports to the Solution Architect or Head of Technology, working closely with the Analytics/BI, Security, and Core Module development teams.

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