Technical Lead

Dentsu Global Services

Pune District

On-site

INR 1,800,000 - 2,400,000

Full time

10 hours ago
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Job summary

Merkle in Pune (DGS India) is looking for a hands-on AWS Technical Lead – Data Engineering with 6 to 10 years of total experience to design and deliver scalable, secure, and high‑performance data platforms on AWS.

The role emphasizes individual contribution with technical ownership, collaborating with global teams, architects, and clients to build enterprise‑grade data pipelines, data lakes and data warehouses using AWS services such as S3, Glue, Athena and Redshift, with Python and Spark-based

Qualifications

  • 6–10 years total experience in data engineering or related field.
  • Hands-on AWS data services and data lake/warehouse architecture.
  • Strong SQL and Python, with PySpark experience.
  • Experience with distributed processing frameworks like Spark.
  • Knowledge of data modeling and performance tuning.

Responsibilities

  • Design and deliver AWS-based data platforms.
  • Develop batch and streaming data pipelines.
  • Collaborate with global teams and clients.
  • Ensure security, reliability, and scalability.
  • Own data engineering deliverables from development to production.

Skills

AWS data services
SQL expertise
Python
PySpark
Data pipelines
Infrastructure as Code
CI/CD
Distributed processing

Education

Bachelor’s or Master’s degree in CS/IS

Tools

Amazon S3
AWS Glue
Athena
Redshift
Spark
Docker
ECS/EKS

Job description

Job Descreption

Looking for a hands‑on AWS Technical Lead – Data Engineering with 6 to 10 years of total experience to design and deliver scalable, secure, and high‑performance data platforms on AWS.


Job Description

This role focuses on strong individual contribution with technical ownership, working closely with global teams, architects, and clients to deliver enterprise‑grade data engineering solutions. The position requires deep expertise in AWS data services, SQL, and Python, and the ability to build and optimize reliable data pipelines for analytics and business use cases.


Years of Experience

Min 6 and max upto 10.


Must Have Skills

Cloud & Data Engineering (AWS)


  • Strong hands‑on experience with AWS data services, including: Amazon S3, AWS Glue, Athena, Redshift

  • Experience designing cloud‑native data lakes and data warehouse architectures on AWS

  • Deep understanding of batch and streaming data pipelines

  • Experience building scalable, fault‑tolerant data ingestion and transformation workflows


SQL & Python (Mandatory)


  • Strong SQL expertise

  • Writing complex SQL for transformations, aggregations, performance tuning, and analytics

  • Hands‑on experience handling large‑scale datasets in Redshift / Athena

  • Strong Python programming skills (mandatory) for data engineering use cases

  • PySpark / Spark‑based processing

  • Building reusable ETL components, utilities, and data pipelines

  • Strong understanding of data modeling, transformations, and performance optimization


Data Processing & Engineering


  • Proven hands‑on experience with distributed processing frameworks such as Spark / PySpark

  • Experience working with structured, semi‑structured, and unstructured data

  • Solid understanding of schema design, partitioning, and query optimization


DevOps & Platform Engineering


  • Experience with Infrastructure as Code using Terraform and/or CloudFormation

  • Hands‑on experience building and maintaining CI/CD pipelines for data platforms

  • Exposure to containerized workloads (Docker, ECS/EKS where applicable to data workloads)


Collaboration & Ownership


  • Strong ownership mindset for solution quality, performance, and production stability

  • Excellent communication skills to collaborate with architects, DevOps, QA, and business stakeholders


Good To Have Skills


  • Experience with real‑time/streaming technologies (Kinesis, Kafka, MSK)

  • Exposure to Lakehouse architectures and modern data platform patterns

  • Experience integrating AWS data platforms with BI and analytics tools

  • Knowledge of data governance, data quality, and metadata management

  • Familiarity with FinOps practices for optimizing AWS data platform costs

  • Exposure to marketing, customer, or analytics data domains (CDP / MarTech)

  • Experience working in Agile delivery models with global delivery exposure


Key responsibiltes


  • Data Platform Design & Development

  • Design and implement AWS‑based data engineering solutions aligned to enterprise standards

  • Build and optimize batch and streaming data pipelines using AWS native and open‑source tools

  • Develop SQL‑driven transformations and Python‑based data pipelines for analytics use cases

  • Design efficient data models for performance, scalability, and cost effectiveness

  • Delivery & Quality Ownership

  • Own data engineering deliverables from development through production support

  • Perform performance tuning, cost optimization, and capacity planning

  • Troubleshoot complex data pipeline and production issues, including root‑cause analysis

  • Ensure solutions meet requirements for security, reliability, and scalability

  • Collaboration & Client Engagement

  • Work closely with architects, product owners, and client stakeholders

  • Translate business and analytics requirements into robust AWS data engineering solutions

  • Provide clear technical inputs, estimates, and implementation trade‑offs

  • Contribute to solution discussions and technical design reviews

  • Engineering Best Practices

  • Follow and contribute to coding standards, documentation, and data engineering best practices

  • Participate in code reviews and continuous improvement initiatives

  • Ensure adherence to AWS, security, and compliance guidelines


Education Qulification


  • Bachelor’s or Master’s degree in Computer Science, Information Systems, Data Engineering, or a related field.


Certification If Any

AWS Data Analytics / Solutions Architect Any two of the above Databricks, Snowflake, or other cloud data platform certifications are a plus.


Shift timing

12 PM to 9 PM and / or 2 PM to 11 PM - IST time zone


Location

DGS India - Pune - Indiqube Orchid


Brand

Merkle


Time Type

Full time


Contract Type

Permanent#DGS

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