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Senior Data Engineer

Visa

Senior Data Engineer

Visa

Bengaluru

·

On-site

·

Full-time

·

6d ago

Required Skills

Java

SQL

MongoDB

Kafka

Spark

Scala

Commercial Money Movement Solution (CMS) division’s charter is to capture new sources of money movement through card and non-card flows, including Visa Business Solutions, Government Solutions and Visa Direct which presents an enormous growth opportunity. Our team brings payment solutions and associated services to clients around the globe. Our global clients and partners deploy our solutions to serve the needs of Small Businesses, Middle Market Clients, Large Corporate Clients, Multi Nationals and Governments.

The Visa Business Solutions (VBS) and Visa Government Solutions (VGS) team is a world-class technology organization experiencing tremendous, double-digit growth as we expand products into new payment flows and continue to grow our core card solutions. This is an incredibly exciting team to join as we expand globally.

Essential Functions

  • Work with manager and clients to fully understand business requirements and desired business outcomes
  • Assist in scoping and designing analytic data assets, implementing modelled attributes and contributing to brainstorming sessions
  • Build and maintain a robust data engineering process to develop and implement self-serve data and tools for Visa’s data scientists
  • Perform other tasks on R&D, data governance, system infrastructure, analytics tool evaluation, and other cross team functions, on an as-needed basis
  • Find opportunities to create, automate and scale repeatable analyses or build self-service tools for business users
  • Execute data engineering projects ranging from small to large either individually or as part of a project team
  • Ensure project delivery within timelines and budget requirements

This is a hybrid position. Expectation of days in the office will be confirmed by your Hiring Manager.

Basic Qualifications:

2+ years of relevant work experience and a Bachelors degree, OR 5+ years of relevant work experience

Preferred Qualifications:

3 or more years of work experience with a Bachelor’s Degree or more than 2 years of work experience with an Advanced Degree (e.g. Masters, MBA, JD, MD)

Bachelor’s degree in Computer Science, Computer Engineering, Data Engineering, or a related technical field required

Master’s degree in Data Science, AI/ML, or Software Engineering preferred

3–6 years of software development experience, with a strong focus on data centric and analytics platforms

3+ years of hands on experience with Java or Scala

Core Experience:

Demonstrated expertise in modern software engineering best practices (clean code, modular design, code reviews, CI/CD)

Big Data & Distributed Systems (Modernized)

Strong hands on experience with distributed data processing frameworks, including:

Apache Spark (Core, SQL, Structured Streaming)

Hadoop ecosystem (HDFS, Hive, Hbase, MongoDB)

Apache Flink or Kafka Streams for real time processing (preferred)

Experience building highly scalable, fault tolerant, low latency data pipelines

Programming Languages:

Working proficiency in Python for data processing, ML, and automation

Familiarity with SQL and performance tuning for analytical workloads

Data Platforms & Storage:

Experience with relational and NoSQL databases, including:

DB2, MySQL, PostgreSQL

NoSQL / distributed stores: HBase, Cassandra, DynamoDB, MongoDB

Experience with modern data lake and lakehouse architectures, including:

Delta Lake, Apache Iceberg, Apache Hudi

Familiarity with cloud data warehouses:

Snowflake, Big Query, Amazon Redshift, Azure Synapse

Cloud & Infrastructure:

Hands on experience with cloud platforms:

AWS, Azure, or GCP

Experience with cloud native data services, such as:

AWS EMR, Glue, Athena

Azure Data Factory, Databricks

GCP Dataflow, Dataproc

Familiarity with containerization and orchestration:

Docker, Kubernetes (basic to intermediate)

Data Engineering & Orchestration:

Experience with data pipeline orchestration tools:

Apache Airflow, Dagster, Prefect

Knowledge of data quality, lineage, and governance frameworks

Experience with schema evolution, data validation, and observability

AI / ML & GenAI (Added – Hands On)

Practical experience supporting or implementing ML pipelines, including:

Feature engineering and dataset preparation

Model training, evaluation, and batch/real time inference

Hands on exposure to ML frameworks:

scikit learn, Tensor Flow, Py Torch (working knowledge)

Experience with MLOps concepts:

Model versioning, monitoring, CI/CD for ML (MLflow, Sage Maker, Vertex AI)

Generative AI & Prompt Engineering (New)

Hands on experience integrating Generative AI models into data workflows:

Strong understanding of prompt engineering techniques, including:

Few shot and zero shot prompting

Prompt optimization and evaluation

Structured outputs (JSON, schemas)

Experience working with LLM APIs for:

Data enrichment

Text summarization

Semantic search and embeddings

Familiarity with RAG (Retrieval Augmented Generation) architectures and vector databases:

FAISS, Pinecone, Weaviate, Open Search

CI/CD, Dev

Ops & Automation:

Experience with CI/CD pipelines and automation tools:

Jenkins, GitHub Actions, GitLab CI

Experience with version control and artifact management:

Git, Artifactory, Nexus

Familiarity with infrastructure as code:

Terraform, CloudFormation (preferred)

Development Methodologies:

Experience working in Agile / Scrum environments. Strong background in Test Driven Development (TDD) and automated testing

Familiarity with data testing frameworks (Great Expectations, dbt tests)

Analytics & Data Science (Nice to Have):

Familiarity with data mining and statistical modeling techniques, including:

Regression, classification, clustering, decision trees

Ability to collaborate with data scientists and analysts to productionize models

Business & Soft Skills:

Strong business acumen, able to translate business needs into scalable data solutions

Strategic thinker with a product oriented mindset

Demonstrated analytical rigor, attention to detail, and problem solving skills

Team oriented, collaborative, adaptable, and able to work across functions

Visa is an EEO Employer. Qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, sexual orientation, gender identity, disability or protected veteran status. Visa will also consider for employment qualified applicants with criminal histories in a manner consistent with EEOC guidelines and applicable local law.

Visa is a world leader in payments technology, facilitating transactions between consumers, merchants, financial institutions and government entities across more than 200 countries and territories, dedicated to uplifting everyone, everywhere by being the best way to pay and be paid.

At Visa, you'll have the opportunity to create impact at scale — tackling meaningful challenges, growing your skills and seeing your contributions impact lives around the world. Join Visa and do work that matters — to you, to your community, and to the world.

Progress starts with you.

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About Visa

Visa

A multinational financial services company that facilitates electronic payment systems throughout the world.

10,001+

Employees

Foster City

Headquarters

$500B

Valuation

Reviews

2.0

3 reviews

Work Life Balance

1.5

Compensation

2.0

Culture

1.2

Career

1.8

Management

1.3

10%

Recommend to a Friend

Pros

Active recruiting for senior positions

Work authorization support for spouses

Opportunity to seek external roles

Cons

Toxic work environment

Below-market compensation offers

Poor management and leadership

Salary Ranges

23 data points

Junior/L3

Mid/L4

Junior/L3 · Analyst

1 reports

$106,195

total / year

Base

$92,300

Stock

-

Bonus

-

$106,195

$106,195

Interview Experience

4 interviews

Difficulty

3.3

/ 5

Duration

14-28 weeks

Experience

Positive 0%

Neutral 75%

Negative 25%

Interview Process

1

Application Review

2

Online Assessment

3

Phone Screen

4

Technical Interview Rounds

5

Final Round Interview

6

Offer

Common Questions

Coding/Algorithm

Technical Knowledge

Behavioral/STAR

System Design