Senior Data Platform Engineer ID92207

AgileEngine, LLC.

Monterrey

On-site

MXN 1,991,000 - 2,715,000

Full time

9 days ago
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Benefits offered by this job

Professional growth
Competitive compensation
Exciting projects
Flextime

Job summary

AgileEngine, LLC. seeks a Senior Data Engineer to operate and improve a Snowflake-based data platform within a regulated healthcare environment. You will own the Data Platform service for the LatAm window, manage production and non-production environments, and lead incident resolution.

You will design and maintain end-to-end data pipelines across RAW, CURATED, and CONSUMPTION layers, with an emphasis on data quality, observability, and CI/CD practices. Strong English communication required.

Qualifications

  • 5+ years of professional experience in Data Engineering or Data Platform Engineering.
  • Strong hands-on experience with Snowflake and data-layer design, warehouse performance, access patterns, and production troubleshooting.
  • Advanced SQL and strong experience with dbt for transformation, testing, documentation, lineage, and controlled deployment.
  • Experience operating managed ingestion tools such as Fivetran or HVR and supporting custom data-ingestion pipelines.
  • Hands-on experience with AWS data services, particularly S3 and event-driven or file-based ingestion patterns.
  • Experience orchestrating data workloads with Argo Workflows on Kubernetes or comparable tools.
  • Proficiency in Python or a similar language for data engineering, automation, and tooling.
  • Strong understanding of data modeling, pipeline dependencies, schema evolution, and data quality.
  • Experience with observability, logging, alerting, and incident-management for production data platforms.
  • Ability to lead complex incident resolution, perform root-cause analysis, and drive preventive actions.

Responsibilities

  • Own Data Platform service during LatAm window; day-to-day operations, complex troubleshooting, and L2/L3 escalations.
  • Operate and optimize Snowflake production and non-production environments; manage warehouse sizing and performance.
  • Administer data access with least-privilege controls and audit-ready practices.
  • Oversee data ingestion across Fivetran, HVR, and custom pipelines; manage scheduling and schema changes.
  • Design, build, and maintain pipelines and dbt models across RAW, CURATED, and CONSUMPTION layers; ensure testing and lineage.
  • Support AWS S3 data-lake operations; manage lifecycle, access patterns, and logging.
  • Coordinate with Cloud/DevOps on Argo Workflows and Kubernetes workloads; deploy and recover.
  • Improve data quality and observability standards including freshness and schema checks.
  • Expand monitoring and lineage using SYNQ, dbt, Snowflake audit data, and Splunk.
  • Lead major data incidents; perform root-cause analysis and preventive actions.
  • Support Tableau Cloud operations when data issues require investigation.
  • Identify automation and standardization opportunities to improve reliability and reduce costs.
  • Create runbooks, procedures, architecture context, and knowledge-transfer materials.
  • Mentor engineers and ensure effective handoffs across the team.
  • Participate in Data Platform on-call rotation.

Skills

Snowflake
SQL
dbt
Python
Argo Workflows
Kubernetes
AWS S3
Data modeling
Data quality
Observability
Incident management
Mentoring
English

Tools

Fivetran
HVR

Job description

Monterrey, Mexico | Posted on 10/01/2026

WHY JOIN US

If you're looking for a place to grow, make an impact, and work with people who care, we'd love to meet you!

ABOUT THE ROLE

We are looking for a Senior Data Engineer to operate and improve a Snowflake-based enterprise data platform in a regulated healthcare environment.

WHAT YOU WILL DO
  • - Provide senior technical ownership for the Data Platform service tower during the LatAm coverage window, including day-to-day operations, complex troubleshooting, and L2/L3 escalation.
  • - Operate and improve Snowflake production and non-production environments, including warehouse configuration and sizing, performance and consumption monitoring, object lifecycle, environment hygiene, and support for production changes.
  • - Administer data access within established controls, including users, roles, service accounts, secrets, and credential rotation, while maintaining least-privilege and audit-ready practices.
  • - Operate and improve data ingestion across Fivetran, HVR where applicable, and custom pipelines, including connector configuration, scheduling, source onboarding, schema-change coordination, failure recovery, backfills, and dependency management.
  • - Design, build, and maintain reliable pipelines and dbt models across RAW, CURATED, and CONSUMPTION layers, with appropriate testing, documentation, lineage, version control, and CI/CD practices.
  • - Support AWS S3 data-lake operations, including raw and landing-zone workflows, lifecycle and retention controls, access patterns, logging, ingestion failures, and coordination with downstream Snowflake workloads.
  • - Support Argo Workflows and Kubernetes-hosted data workloads in close coordination with the Cloud / DevOps team, including scheduling, troubleshooting, deployment, recovery, and capacity dependencies.
  • - Define and improve data quality and observability standards, including freshness, zero-row, row-count growth, null, duplicate, schema-drift, and referential-integrity checks.
  • - Expand end-to-end monitoring and lineage using tools such as SYNQ, dbt, Snowflake audit data, Splunk, and the agreed alerting stack, linking actionable alerts to evidence and runbooks.
  • - Lead or support major data incidents, root-cause analysis, post-incident reviews, and preventive actions across ingestion, orchestration, Snowflake, and downstream Tableau dependencies.
  • - Support Tableau Cloud operations where upstream data, connectivity, permissions, extracts, or refresh failures require Data Platform investigation.
  • - Identify and deliver standardization, automation, reliability, performance, and cost improvements, including migration of suitable legacy or custom extraction patterns toward agreed golden paths.
  • - Execute work through controlled incident, request, access, change, and release processes using established service-management workflows.
  • - Create and maintain runbooks, operating procedures, architecture context, ownership information, recovery procedures, and knowledge-transfer materials.
  • - Mentor Middle-level engineers, review technical work, improve team practices, and ensure effective handoffs across the distributed service team.
  • - Participate in the Data Platform on-call rotation for critical incidents outside staffed service hours.
MUST HAVES
  • - 5+ years of professional experience in Data Engineering or Data Platform Engineering.
  • - Strong hands-on experience operating and developing solutions on Snowflake, including data-layer design, warehouse performance, access patterns, and production troubleshooting.
  • - Advanced SQL skills and strong experience with dbt for transformation, testing, documentation, lineage, and controlled deployment.
  • - Experience operating managed ingestion tools such as Fivetran or HVR and supporting custom data-ingestion pipelines.
  • - Hands-on experience with AWS data services, particularly S3 and event-driven or file-based ingestion patterns.
  • - Experience orchestrating and troubleshooting data workloads with Argo Workflows on Kubernetes, or comparable workflow-orchestration technologies.
  • - Proficiency in Python or a comparable language for data engineering, automation, and operational tooling.
  • - Strong understanding of data modeling, pipeline dependencies, schema evolution, backfills, data validation, and production data quality.
  • - Experience with observability, logging, alerting, and incident-management practices for production data platforms.
  • - Demonstrated ability to lead complex incident resolution, perform root-cause analysis, and convert findings into preventive improvements.
  • - Ability to make well-reasoned technical decisions, identify tradeoffs, estimate work, and guide improvements across a complex platform.
  • - Experience mentoring engineers and collaborating effectively with Cloud / DevOps, Analytics, Security, Governance, and business stakeholders.
  • - Strong written and verbal English communication skills, with the ability to work directly with client stakeholders.
  • - Full availability to work from 9:00 AM to 6:00 PM Pacific Time and participate in an agreed on-call rotation.
NICE TO HAVES
  • - Hands-on experience with a data-specific observability platform.
  • - Experience supporting Tableau Cloud administration, data-source connectivity, extracts, scheduled refreshes, or production dashboard dependencies.
  • - Familiarity with Snowflake cost optimization, audit logging, tasks, stored procedures, and environment rationalization.
  • - Experience migrating legacy ingestion or orchestration patterns such as Boomi or AWS Data Pipeline to modern managed or Kubernetes-based solutions.
  • - Experience with Terraform, CI/CD pipelines, and Infrastructure as Code practices supporting data platforms.
  • - Experience with service-management and change-control tools such as Freshservice and Jira.
  • - Familiarity with HIPAA, GDPR, FDA-related controls, least-privilege access, separation of duties, and audit-ready operational practices.
PERKS AND BENEFITS
  • - Professional growth: Accelerate your professional journey with mentorship, TechTalks, and personalized growth roadmaps.
  • - Competitive compensation: We match your ever-growing skills, talent, and contributions with competitive USD-based compensation and budgets for education, fitness, and team activities.
  • - A selection of exciting projects: Join projects with modern solutions development and top-tier clients that include Fortune 500 enterprises and leading product brands.
  • - Flextime: Tailor your schedule for an optimal work-life balance, by having the options of working from home and going to the office – whatever makes you the happiest and most productive.
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