Data Engineer

Posted 2 Days Ago
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Hiring Remotely in MEX
Remote
Entry level
Information Technology • Logistics • Professional Services • Consulting
The Role
Designs and maintains scalable cloud-native ETL/ELT pipelines, data models, Lakehouse architectures, APIs, and real-time streaming solutions. Uses Azure, Databricks, Spark, Python, SQL, and distributed data technologies to support analytics and business intelligence. Ensures data quality, governance, security, performance, and reliability while collaborating with analysts, data scientists, application teams, and stakeholders. Supports DataOps, CI/CD, monitoring, troubleshooting, and automated deployment of enterprise data platforms.
Summary Generated by Built In

Data Engineer

Role Overview

The Data Engineer is responsible for designing, building, and maintaining scalable, cloud�native data pipelines and data infrastructure that support analytics, reporting, business

intelligence, and real-time data processing. This role ensures that data is accessible,

reliable, secure, and optimized for performance across enterprise platforms. The Data

Engineer collaborates with business stakeholders, analysts, data scientists, and

application teams to deliver high-quality data solutions using modern cloud, big data, and

API-driven technologies.

Key Responsibilities

• Design, develop, and maintain scalable ETL/ELT pipelines for batch and real-time

data processing.

• Build and optimize data models, Delta Tables, and Lakehouse architectures to

support analytics and reporting.

• Develop and integrate RESTful APIs and data services to facilitate seamless data

exchange across enterprise systems.

• Implement real-time and high-frequency data ingestion frameworks using streaming

technologies and event-driven architectures.

• Design and manage cloud-native data solutions leveraging Azure services including

Azure Data Factory, Azure Databricks, ADLS, Event Hubs, and Synapse Analytics.

• Develop and optimize Databricks Spark applications for large-scale data

transformation and processing.

• Ensure data quality, governance, security, and compliance across data platforms.

• Collaborate with data scientists, analysts, application teams, and business

stakeholders to deliver scalable data solutions.

• Troubleshoot, monitor, and optimize pipeline performance and data platform

reliability.

• Support DataOps and CI/CD practices for data pipeline deployment and

automation.

Required Skills & Qualifications

• Strong proficiency in SQL and relational databases such as Oracle, SQL Server, and

MySQL.

• Strong programming skills in Python, PySpark, PL/SQL, Java, or Scala.

• Hands-on experience with Azure Cloud technologies:

o Azure Data Factory (ADF)

o Azure Databricks

o Azure Data Lake Storage (ADLS)

o Azure Synapse Analytics

o Azure Event Hubs

o Azure Functions

o Azure API Management

o Azure DevOps

• Experience with Databricks Lakehouse architecture, Delta Lake, and Delta Tables.

• Expertise in API development, API integration, RESTful services, and microservices

architecture.

• Experience processing high-volume and high-frequency data with low-latency

requirements.

• Strong knowledge of real-time data ingestion and streaming technologies such as

Kafka, Azure Event Hubs, or Kinesis.

• Experience with Spark, Hadoop, and distributed data processing frameworks.

• Hands-on experience with OpenShift, Kubernetes, Docker, and containerized

deployments.

• Experience with workflow orchestration tools such as Apache Airflow and Azure

Data Factory.

• Understanding of data governance, data security, and compliance best practices.

Preferred Qualifications

• Experience with Delta Live Tables (DLT), Auto Loader, and Change Data Capture

(CDC).

• Knowledge of DataOps, CI/CD, and Infrastructure as Code (IaC).

• Familiarity with event-driven architectures and real-time analytics platforms.

• Azure Data Engineer (DP-203) and Databricks certifications

mandatory skills:

  • Python

  • Azure

  • SQL

REMOTE

ADVANCED ENGLISH

Skills Required

  • Strong proficiency in SQL and relational databases including Oracle, SQL Server, and MySQL
  • Strong programming skills in Python, PySpark, PL/SQL, Java, or Scala
  • Hands-on experience with Azure Data Factory, Azure Databricks, Azure Data Lake Storage, Azure Synapse Analytics, Azure Event Hubs, Azure Functions, Azure API Management, and Azure DevOps
  • Experience with Databricks Lakehouse architecture, Delta Lake, and Delta Tables
  • Experience developing and integrating APIs, RESTful services, and microservices
  • Experience processing high-volume and high-frequency data with low-latency requirements
  • Knowledge of real-time data ingestion and streaming technologies such as Kafka, Azure Event Hubs, or Kinesis
  • Experience with Spark, Hadoop, and distributed data processing frameworks
  • Hands-on experience with OpenShift, Kubernetes, Docker, and containerized deployments
  • Experience with workflow orchestration tools such as Apache Airflow and Azure Data Factory
  • Understanding of data governance, data security, and compliance best practices
  • Experience with Delta Live Tables, Auto Loader, and Change Data Capture
  • Knowledge of DataOps, CI/CD, and Infrastructure as Code
  • Familiarity with event-driven architectures and real-time analytics platforms
  • Azure Data Engineer DP-203 and Databricks certifications
  • Python proficiency
  • Azure experience
  • SQL proficiency
  • Advanced English proficiency
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The Company
21 Employees
Year Founded: 2016

What We Do

VALCE Talent Solutions is a recruitment agency and consulting firm specializing in IT talent acquisition and nearshoring, primarily in Mexico. They design customized solutions in IT talent and process optimization to help businesses scale intelligently and profitably. Their expertise focuses on specialized industries including Information Technology, Operations Management, and Supply Chain, providing end-to-end talent offerings to attract and retain top professional profiles.

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