Data Engineer

Fruveggie Technology

Mumbai

On-site

INR 900,000 - 1,500,000

Full time

5 days ago
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Job summary

Fruveggie Technology is seeking a Data Engineer to design, build, and maintain data infrastructure powering analytics and AI-driven features. You will own data pipelines, data warehouses, and integrations, partnering with engineering and business teams to deliver reliable, scalable solutions.

Responsibilities include building ETL/ELT pipelines, managing data lakes and warehouses, and enabling data quality and governance across systems.

Qualifications

  • Bachelor's or Master's degree in Computer Science, Data Engineering, or a related field.
  • Hands-on experience building and maintaining production-grade ETL/ELT pipelines and data warehouses.
  • Experience with cloud data platforms (AWS, GCP, or Azure).
  • Exposure to supporting LLM/AI pipelines or automation use cases will be an added advantage.

Responsibilities

  • Design, build, and maintain scalable ETL/ELT pipelines for structured and unstructured data.
  • Develop and maintain infrastructure for real-time and batch data processing.
  • Architect and manage data warehouses, data lakes, and database systems for analytics and ML workloads.
  • Implement data quality checks, monitoring, and alerting to ensure pipeline reliability and data integrity.
  • Build and orchestrate ETL/ELT pipelines using tools such as Airflow, dbt, or equivalent.
  • Develop web and app data scraping/extraction solutions (BeautifulSoup, Scrapy, Selenium, or similar).
  • Integrate APIs and third-party data sources into the data ecosystem.
  • Support LLM/AI pipelines with data feeds or vector stores.

Skills

ETL/ELT pipelines
Data modelling
Cloud data platforms
Automation
Airflow
dbt
Web scraping
APIs & data integration

Education

Bachelor's or Master's in CS / Data Eng

Tools

Airflow
dbt
BeautifulSoup
Scrapy
Selenium

Job description

Role Overview

The Data Engineer will design, build, and maintain the data infrastructure that powers analytics and AI-driven features across the product. The role will combine strong engineering capabilities with hands-on ownership of data pipelines, warehouses, and integrations, working closely with engineering and business teams to build reliable, scalable data pipelines and ensure high-quality data is available for downstream systems.


Role & responsibilities
1. Data Pipeline Engineering
  • Design, build, and maintain scalable ETL/ELT pipelines for structured and unstructured data.
  • Develop and maintain infrastructure for real-time and batch data processing.
  • Build and optimise data models and schemas to support reporting and experimentation.
2. Data Warehousing & Infrastructure
  • Architect and manage data warehouses, data lakes, and database systems for analytics and ML workloads.
  • Optimise query performance and manage cost/efficiency of data storage and compute.
  • Work with cloud platforms (AWS, GCP, or Azure) to build and maintain data infrastructure.
3. Data Quality & Governance
  • Implement data quality checks, monitoring, and alerting to ensure pipeline reliability and data integrity.
  • Apply data governance, security, and privacy best practices across systems.
4. Integration & Automation
  • Build and orchestrate ETL/ELT pipelines using tools such as Airflow, dbt, or equivalent.
  • Develop web and app data scraping/extraction solutions (BeautifulSoup, Scrapy, Selenium, or similar).
  • Integrate APIs and third-party data sources into the data ecosystem.
  • Support LLM/AI pipelines with data feeds or vector stores.
5. Cross-Functional Collaboration
  • Partner with engineering and business teams on real-world use cases such as event tracking, customer 360 pipelines, personalisation data feeds, and automation.
  • Translate business and product requirements into robust, scalable data infrastructure.
6. Continuous Improvement
  • Stay current with advancements in data engineering, cloud data platforms, and AI infrastructure.
  • Identify opportunities to adopt streaming platforms, big data tools, and containerisation where relevant.

Preferred candidate profile
  • 1. Bachelor's or Master's degree in Computer Science, Data Engineering, or a related field.
  • 2. Hands-on experience building and maintaining production-grade ETL/ELT pipelines and data warehouses.
  • 3. Experience with cloud data platforms (AWS, GCP, or Azure).
  • Exposure to supporting LLM/AI pipelines or automation use cases will be an added advantage.
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