AI Engineer

DocuSign, Inc.

Bengaluru

Hybrid

INR 1,500,000 - 2,500,000

Full time

14 days+

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Job summary

DocuSign, Inc. is seeking a Data + AI Engineer in Bengaluru, India, to design and deliver AI-native data solutions that provide actionable insights. The candidate will work with scalable data and AI pipelines on Snowflake and AWS while integrating various GenAI tools. Responsibilities include developing AI workflows, managing AWS infrastructure, and ensuring data privacy. An expert in SQL and Python with over 8 years of experience is required. Hybrid work model with a minimum of 2 days in-office expected.

Qualifications

  • 8+ years of Data Engineering and AI/ML experience in production environments.
  • Expert-level SQL and Snowflake skills, including performance tuning.
  • Strong Python skills for data pipelines and AI integration.

Responsibilities

  • Champion an AI-first mindset in data workflows.
  • Build and operate agentic workflows for multi-step business processes.
  • Design data architectures for analytics, RAG, fine-tuning, and AI.

Skills

SQL
Python
Data Engineering
AI/ML Engineering
Airflow
dbt
Fivetran
Hightouch

Education

Bachelor’s Degree in Computer Science or related field

Tools

Snowflake
AWS
Monte Carlo
Tableau
Jira

Job description

What you'll do

Docusign is seeking a talented and results-oriented Data + AI Engineer to design and deliver AI-native data solutions that provide trusted, actionable insights to the business. As a member of the Global Data Analytics (GDA) team, you will build and operate scalable data and AI pipelines on Snowflake and AWS, orchestrated with dbt, Airflow, Fivetran, and Hightouch, while integrating GenAI tools such as Claude, Glean, Gemini, Snowflake Intelligence, and enterprise copilots into day-to-day engineering workflows. On a typical day, you will develop agentic flows (e.g., Crew AI–style orchestration), ship new data and AI features for domains like MDM, Marketing, Finance, and Customer Success, and transform complex datasets into high-quality, “AI-ready” models that power analytics, telemetry, and decision intelligence. The ideal candidate brings a positive “can-do” attitude, a passion for learning and experimentation with new AI capabilities, and the drive to deliver high-impact solutions in partnership with a world‑class team.

This position is an individual contributor role reporting to the Manager Data Engineering.

Responsibility
  • Champion an AI-first mindset, embedding AI into data workflows, internal tools, and business processes
  • Design and maintain AI-native data solutions and scalable data/AI pipelines for analytics, RAG, fine-tuning, and copilots
  • Build and operate agentic workflows (e.g., Crew AI, LangGraph, AutoGen) for complex multi-step business processes
  • Develop and run LLM-integrated pipelines using Claude, Glean, Gemini, Snowflake Cortex and enterprise copilots
  • Define prompt engineering patterns, evaluation methods, and guardrails for production AI applications
  • Translate business problems into data + AI solutions that deliver clear, actionable business insights
  • Design robust data architectures spanning batch, streaming, and AI inference layers
  • Build Snowflake-based pipelines using Python, dbt, and Airflow for analytics and AI workloads
  • Implement and maintain data ingestion and reverse-ETL using Fivetran and Hightouch
  • Model data for MDM, Marketing, Finance, and Customer Success (adoption, retention, telemetry)
  • Manage AWS infrastructure (S3, EC2, IAM, Lambda, Step Functions, Glue) for data and AI platforms
  • Enforce data privacy, governance, and compliance, including PII controls in Snowflake and AWS
  • Implement data and AI observability with tools like Monte Carlo and Datadog
  • Optimize SQL models and Python transformations to support feature stores and data products
  • Apply CI/CD, Git, testing, and code review practices to data and AI engineering
  • Partner with stakeholders across functions to gather requirements and design end-to-end data + AI architectures
  • Own and monitor solutions to meet SLAs, SLOs, data freshness, and business KPIs
  • Maintain clear documentation for data platforms, AI systems, and architecture
  • Troubleshoot and resolve data and AI issues, driving root‑cause fixes
  • Deliver work using Agile/Scrum, acting as a strong team player and mentor
Job Designation

Hybrid: Employee divides their time between in‑office and remote work. Access to an office location is required. (Frequency: Minimum 2 days per week; may vary by team but will be weekly in‑office expectation)

What you bring
Basic
  • Bachelor’s Degree in Computer Science, Data Analytics, Information Systems, or a related technical field
  • 8+ years of combined Data Engineering and AI/ML Engineering experience in production environments
  • Expert-level SQL and Snowflake skills, including performance tuning and dimensional/relational modeling
  • Strong Python skills for data pipelines and AI integration
  • Proven experience building and shipping agentic AI workflows (e.g., Crew AI, LangGraph, AutoGen or similar) in production
  • Experience with AI productivity and enterprise tools such as Claude, Glean, Gemini, Snowflake Cortex, GitHub Copilot, dbt Copilot, and other copilots
  • Hands‑on experience with Airflow and dbt, plus Fivetran (ingestion) and Hightouch (reverse‑ETL)
Preferred
  • 8+ years of dimensional and relational data modeling and OLAP data warehousing (Snowflake primary; Teradata/Redshift or similar a plus)
  • 8+ years delivering ETL/ELT solutions from databases, SaaS platforms, APIs, flat files, and JSON using dbt, Matillion, and custom pipelines
  • Deep understanding of GenAI application frameworks and prompt engineering, including RAG, semantic search, vector stores, and embedding pipelines
  • Strong functional experience in MDM, Marketing attribution, Finance (AP/AR, invoicing), or Customer Success (adoption, retention, telemetry)
  • Experience with data observability platforms such as Monte Carlo, Datadog, or Great Expectations
  • Familiarity with data privacy regulations (e.g., GDPR, CCPA) and implementation of PII masking and role-based access controls
  • Experience with AWS (S3, EC2, IAM, Lambda, Step Functions, Glue) and modern CI/CD practices (Git, pipelines, automated testing)
  • Experience building BI dashboards and data products using Tableau, Looker, or equivalent
  • Experience with transactional databases (OLTP) such as Oracle, SQL Server, or MySQL
  • Experience creating ERDs with tools like SQLDBM, Erwin, dbdiagram.io, or equivalent
  • Experience using Jira and Confluence in Scrum/Agile teams to manage AI/data delivery
  • Demonstrated ability to mentor and coach engineers in AI and data engineering, acting as a force multiplier for the team
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