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Data Engineer Department: Global Analytics and Technology Employment Type: Permanent - Full Time Location: India Description Job location: Remote India About the role: The Data Engineering team is seeking a Data Engineer with expertise in data infrastructure, pipeline development, and scalable data solutions to play a pivotal role in enabling data-driven decision-making across the organization. The successful candidate will have a deep knowledge of data architecture and engineering best practices, and will work closely with cross-functional teams to ensure data is clean, reliable, and accessible. This role requires strong technical skills, a solid grasp of business needs, and the ability to bridge the gap between raw data and actionable insights through robust engineering solutions. What you will be expected to do ETL/ELT Pipeline Development: Build, and maintain scalable data pipelines using AWS. Implement both batch and incremental load patterns for BI reporting and application data needs. Real-Time Data Streaming: Develop and manage real-time data ingestion pipelines using Kafka. Ensure low-latency, fault-tolerant data flow for critical business workflows. Workflow Orchestration: Build, schedule, and monitor end-to-end data workflows using Apache Airflow. Manage dependencies, retries, and alerting for production DAGs. Data Warehouse Management: Administer and optimize Amazon Redshift clusters including schema design, query performance tuning, distribution/sort keys, and vacuuming to ensure high availability and cost efficiency. Data Quality & Observability: Implement automated data quality checks at ingestion and transformation stages. Define validation rules, build alerting for anomalies and discrepancies, and establish SLAs to ensure stakeholders can trust the data they use. API Integrations: Integrate third-party and internal REST APIs into data pipelines to pull operational and product data into the warehouse. Cloud Cost Optimization: Monitor and right-size data processing and storage resources across S3, EMR, Redshift, EC2, and Lambda. Proactively identify inefficiencies and propose cost-saving improvements. BI & Analytics Collaboration: Partner with the BI team to align data models, preprocessing logic, and Redshift schema design with reporting and dashboard needs. You might be a strong candidate if you have/are Bachelor’s degree in Computer Science or a related quantitative field. 2+ years of experience working as a Data Engineer Good proficiency in Python and SQL for data transformation and pipeline development Hands-on experience with Apache Spark (PySpark) for large-scale data processing Working knowledge of Kafka for real-time data ingestion and stream processing Hands-on experience managing and maintaining Airflow DAGs in production environments Familiarity with Redshift performance tuning, schema design, and query optimization Experience implementing automated data validation and quality checks within pipelines Detail-oriented with a keen interest in data transformations and their impact on business outcomes Problem-solving and time management skills Prior experience in project or team management is preferred, enthusiasm for mentoring and guiding others is a plus. What Sun King offers Professional growth in a dynamic, rapidly expanding, high-social-impact industry An open-minded, collaborative culture made up of enthusiastic colleagues who are driven by the challenge of innovation towards profound impact on people and the planet. A truly multicultural experience: you will have the chance to work with and learn from people from different geographies, nationalities, and backgrounds. Structured, tailored learning and development programs that help you become a better leader, manager, and professional through the Sun King Center for Leadership.
Here's how to pick the right one and stand out in your application.
144.883Jobs
31.687IN
81%EN
That number is real. WorkMundi's database shows 144,883 open engineer roles across the world. India has the most with 31,687 jobs, followed by the United States with 30,084. If you just finished reading one job ad and felt paralyzed by choice, you're not alone—but this scale is actually an advantage. It means you can afford to be selective.
Start by geography and language. The majority of engineer ads—117,837 of them—have the job posting text written in English. Use that as one filter, but remember: the ad text language tells you nothing about whether the role actually requires you to speak English day-to-day. Read the job description carefully. Then check which countries have the volume you're targeting. Singapore, Poland, and Australia round out the top five after India and the US.
Next, learn who's hiring. Accenture has posted 2,801 engineer roles. andurilindustries, speechify, and jobgether are also actively recruiting. If you're applying to one of these names, research their hiring patterns and interview style before you apply. That homework pays off.
When you interview, expect the question every engineer hears: 'Tell me about a time you had to debug a problem that wasn't in your job description.' Have a specific story ready—not a general one. Name the tools, the deadline pressure, and what you learned. Hiring managers listen for whether you see problem-solving as part of the role itself, not a favour.