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高级AI数据工程师

雇主

Strategic Systems International

地点

远程 · 阿根廷

待遇

面议

工作模式

远程

截止日期

12月7日

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岗位摘要

Senior AI Data EngineerJob SummaryWe are seeking a Senior AI Data Engineer to design and operate the data foundation that our AI systems depend on.

岗位职责

Senior AI Data Engineer
Job Summary
We are seeking a Senior AI Data Engineer to design and operate the data foundation that our AI systems depend on. This role owns the movement, modeling, and quality of data from source systems through the warehouse and into the retrieval and feature layers that power LLM pipelines, agentic workflows, and analytical products.
The ideal candidate is a rigorous software engineer first and a data specialist second: someone who models a warehouse deliberately, writes production Python that other engineers can extend, and treats pipelines as versioned, tested, observable software rather than scripts.
This role partners closely with the AI/ML Data Scientist, who owns model behavior and retrieval strategy.
The boundary: you own the pipeline, the schema, and the guarantees; they own the algorithm, the prompt, and the evaluation.
Required Qualifications
5-10+ years in software engineering or data engineering, with substantial time in production data platform work.
Data warehousing: demonstrable command of Kimball dimensional modeling - not just familiarity with the vocabulary, but the judgment to choose a grain, resolve a many-to-many relationship, and know when to denormalize. Working knowledge of alternative approaches (Data Vault, One Big Table, Inman) and the tradeoffs against Kimball.
SQL: expert-level - window functions, CTEs, query plan reading, and performance tuning on a columnar warehouse.
Python: expert-level, production-grade - typing, packaging, dependency management, testing.
Design: SOLID and domain-driven design applied in real systems, with examples you can walk through.
Orchestration: Airflow, Prefect, Dagster, or equivalent, in production.
Cloud: expert-level on AWS, Azure, or GCP - storage, compute, IAM, networking, and cost management.
Platform: containerization, Kubernetes (EKS/AKS/GKE), and CI/CD.
Experience with lakehouse table formats (Iceberg, Delta Lake, Hudi) and their maintenance characteristics: compaction, snapshot expiry, schema and partition evolution.
Preferred Qualifications
Experience building the data layer beneath production RAG systems, including hybrid search infrastructure and index freshness guarantees.
Streaming systems: Kafka, Kinesis, Flink, or Spark Structured Streaming.
dbt or an equivalent transformation and testing framework.
Data quality tooling (Great Expectations, Soda, or similar) and catalog/lineage platforms.
Familiarity with the model-facing side of the stack - MLflow, Weights & Biases, feature stores - sufficient to collaborate credibly with data scientists.
Working knowledge of a second language: TypeScript, Java, Go, Scala, or Rust.
Experience with AI security, governance, and compliance frameworks.
Open-source contributions to data or AI infrastructure projects.
Originally posted on Himalayas

申请条件

- 5-10+ years in software engineering or data engineering, with substantial production data platform experience
- Expert-level SQL: window functions, CTEs, query plan reading, performance tuning on columnar warehouses
- Expert-level production-grade Python: typing, packaging, dependency management, testing
- Demonstrable command of Kimball dimensional modeling, including grain selection, many-to-many resolution, and denormalization judgment
- Working knowledge of alternative data modeling approaches (Data Vault, One Big Table, Inman) and tradeoffs
- Strong design skills: SOLID and domain-driven design applied in real systems
- Production experience with orchestration tools (Airflow, Prefect, Dagster, or equivalent)
- Expert-level cloud proficiency on AWS, Azure, or GCP: storage, compute, IAM, networking, cost management
- Platform experience: containerization, Kubernetes (EKS/AKS/GKE), CI/CD
- Experience with lakehouse table formats (Iceberg, Delta Lake, Hudi) and their maintenance
- Rigorous software engineering mindset, treating pipelines as versioned, tested, observable software
- Ability to collaborate closely with AI/ML teams, owning data pipeline, schema, and guarantees

雇主简介

Strategic Systems International is a technology consulting and services company that provides data engineering, AI, and software development solutions.

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数据来源:Himalayas

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