Data Analytics Engineer

Toptal

Buenos Aires

A distancia

ARS 182.485.000 - 273.727.000

Jornada completa

14 días+
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Descripción de la vacante

Toptal seeks a Data Analytics Engineer to own the data transformation layer, govern data quality, and enable data-driven decisions across the organization.

You will collaborate with Data Engineers, Business Analysts, and Data Scientists in a remote, international setting to build robust analytics foundations and AI-enabled data systems.

Formación

  • Bachelor’s degree in Engineering or a related technical field.
  • 4+ years in Analytics Engineer, Data Engineer, or Data Analyst role shipping production data models.
  • Expert‑level SQL skills and working knowledge of Python.
  • Fluency with LLMs and agentic coding tools (Claude Code, Cursor or equivalent).
  • Experience with cloud data warehousing (BigQuery or Snowflake).
  • Knowledge of modern transformation frameworks (dbt, Dataform, SQLMesh).
  • Git fluency and code review in production environments.
  • Experience with BI tools (Tableau, Power BI).
  • Strong communication and collaboration skills.

Responsabilidades

  • Design, write, review and ship SQL models across repositories to transform raw data into usable data products.
  • Collaborate with Data Engineers to add and publish new data sources in the data warehouse.
  • Monitor data warehouse quality, accuracy, coverage, and usability; identify improvement opportunities.
  • Translate ambiguous business asks into modeled data and define business rules.
  • Improve data quality, lineage, access, and retention across source databases.
  • Own data dictionary and document table/column lineage for AI agents and humans.
  • Diagnose and resolve data incidents and review teammates’ code.
  • Work with Business Analysts, Data Engineers, Data Scientists, and process owners to enable data-driven decisions.
  • Help raise team speed by improving agent playbooks, docs, and tooling.

Conocimientos

SQL
Python
LLMs
AI tooling
Data modeling
Data governance
BI tools
Git
Airflow
BigQuery

Educación

Bachelor’s degree in Engineering or related field

Herramientas

BigQuery
Snowflake
dbt
Airflow

Descripción del empleo

About Toptal

Toptal is a global network of top talent in business, design, and technology that enables companies to scale their teams, on-demand. With $200+ million in annual revenue and team members based around the globe, Toptal is the world’s largest fully remote workforce.

We take the best elements of virtual teams and combine them with a support structure that encourages innovation, social interaction, and fun. We see no borders, move at a fast pace, and are never afraid to break the mold.

Job Summary:

Toptal prides itself on being a data-driven organization. The primary objective of the Data Analytics Engineer is to help drive business impact and better decision making by laying the data foundation for a world-class analytics function. This role will be critical to fostering trust in our data and confidence in our decisions.

Our Data Analytics Engineers focus on creating a data environment that is conducive to analytics and business decision making. You will own and maintain the data transformation layer. This will require data governance (quality, accuracy, coverage, security), data modeling (structure, relationships, integrity), technical communication (data dictionaries, user training), quality control (code reviews, data validation), raw data analysis, and building AI data systems and pipelines. You will be the product owner for our data warehouse and will coordinate closely with our functional Business Analysts on one side, and Data Engineers on the other.

This role sits within the Business Analytics Center of Excellence and will ensure trustworthy data is available for all downstream data users. Positive relationships with both Data Engineers and Business Analysts will be key, but you must also think independently and bring your own point of view. To be successful in this role you must live and breathe SQL daily and be a critical thinker, problem solver and self-starter.

This role requires an AI-heavy workflow and skillset. We’ve transformed our codebase to be instrumented for agentic development and continue to build our internal AI tooling, and you will be part of this process. Fluency with using LLMs and agentic coding tools is a requirement of this role. The flip side of that is the part machines cannot do: understanding our business and metrics deeply, and making decisions on what matters and what doesn’t in terms of pushing the company’s business objectives forward.

This is a remote position. We do not offer visa sponsorship or assistance. Resumes and communication must be submitted in English.

Responsibilities:

The following information is intended to describe the general nature and level of work being performed. It is not intended to be an exhaustive list of all duties, responsibilities, or required skills.

  • Design, write, review and ship SQL models across our repositories that transform raw data into usable data products for all organizational stakeholders. Own and maintain the transformation layer.
  • Proactively work with the Data Engineers to ensure new data sources are added and available, and then modeled and published in our data warehouse.
  • Proactively monitor the data warehouse and extract insights to identify opportunities to improve data operations, data accuracy and quality, coverage, integrity, structure, and general usability.
  • Turn ambiguous business asks into modeled data. Run requirements gathering with stakeholders. Establish the grain, surface the edge cases, write down the business rules, and push back when the request would produce a misleading number.
  • Implement measures and processes to improve data quality, accuracy, coverage, lineage, access and retention across dozens of source production databases.
  • Own the data dictionary. Write table and column documentation that traces each field to its true origin. This documentation is consumed by AI agents as well as humans, and is an integral part of the semantic layer.
  • Diagnose and resolve data incidents.
  • Review your teammates’ code and provide feedback to maintain the hygiene of the data warehouse production environment.
  • Work closely with Business Analysts, Data Engineers, Data Scientists, and business process owners to empower data-driven decision making.
  • Enable end users to better use data, understand complexities, nuances, and limitations.
  • Help make the team faster. Improve the agent playbooks, documentation, and tooling the team uses to work with the warehouse.
Qualifications and Job Requirements:
  • Bachelor’s degree is required, preferably in Engineering or a related technical field.
  • 4+ years of experience in an Analytics Engineer, Data Engineer, or Data Analyst role where you personally shipped production data models.
  • Expert‑level SQL skills and a working knowledge of Python.
  • Fluency with LLMs and agentic coding tools. You already use tools such as Claude Code, Cursor or equivalent as part of your daily working practice. You know where they are reliable, where they should not be used, and how to verify their output.
  • Experience with cloud data warehousing, such as BigQuery or Snowflake.
  • Good understanding of a modern transformation framework (dbt, Dataform, SQLMesh or similar). You understand dependency graphs, refs, incremental strategies, tests and environment promotion as concepts, not just as commands.
  • Git fluency. Branching, pull requests, code review, conflict resolution and generally working with a critical production environment.
  • Strong familiarity with orchestration tools such as Airflow, Cloud Composer, Dagster or Prefect. You can read a DAG, understand its schedule and dependencies, and find out why a task failed.
  • Process discipline. Jira, ticket hygiene, and code review etiquette. It’s mandatory you understand how to avoid shipping unverified LLM-generated code.
  • Experience in doing exploratory/raw data analysis, data modeling, and data governance (quality, accuracy, coverage, security, etc.).
  • Experience translating business logic and objectives into SQL code and linking data and analytics to business strategy and operations to drive real impact.
  • Familiarity with BI tools (Tableau, Power BI, etc.).
  • Detail oriented, methodical, and thorough.
  • Team player who builds strong relationships and collaborates with others.
  • Outstanding written and verbal communication skills, including the ability to explain complex issues in a simple and intuitive way.
  • Ability to work collaboratively and independently; take ownership of quality, accuracy, and timeliness of deliverables.
  • You must be a world‑class individual contributor to thrive at Toptal. You will not be here just to tell other people what to do.
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