Qualifications
Responsibilities
Benefits
You Are
A hands-on Engineer with foundational experience in Data Engineering, Analytics, or Machine Learning—now building deep expertise in Google Cloud Platform (GCP). You are eager to apply technical skills, learn advanced Data & AI patterns, and support delivery teams in designing and implementing modern data and AI solutions.
You’re comfortable working directly with clients, supporting senior architects, and contributing to end-to-end project execution.
The Work (What You Will Do)
As a GCP Senior Data Engineer, you will help deliver data modernization, analytics, and AI solutions on GCP. You will support architecture design, build data pipelines and models, perform analysis, and contribute to technical implementations under guidance from senior team members.
1. Hands-On Technical Delivery
Build data pipelines, ETL/ELT processes, and integrations using GCP services such as: BigQuery, Dataflow, Dataproc, Pub/Sub, Cloud Storage
Assist with data modeling, performance tuning, and query optimization in BigQuery.
Implement data ingestion patterns for batch and streaming data sources.
Support development of dashboards and analytics products using Looker or Looker Studio.
2. Support Agentic AI & ML Solution Development
Assist in developing ML models and AI solutions using:
Vertex AI, Gemini Foundation Models, Gemini Enterprise, Model APIs & Embeddings
Implement ML pipelines and help establish MLOps processes (monitoring, retraining, deployment).
Support prompt engineering, embeddings, and retrieval-augmented generation (RAG) experimentation.
Contribute to model testing, validation, and documentation.
3. Requirements Gathering & Client Collaboration
Participate in client workshops to understand data needs, use cases, and technical requirements.
Help translate functional requirements into technical tasks and implementation plans.
Communicate progress, blockers, and insights to project leads and client stakeholders.
4. Data Governance, Quality & Security Support
Implement metadata management, data quality checks, and lineage tracking using GCP tools (Dataplex, IAM).
Follow best practices for security, identity management, and compliance.
Support operational processes for data validation, testing, and monitoring.
5. Continuous Learning & Team Support
Learn and apply GCP Data & AI best practices across architectural patterns, engineering standards, and AI frameworks.
Collaborate closely with senior data engineers, ML engineers, and architects.
Contribute to internal accelerators, documentation, and reusable components.
Stay current with GCP releases, Gemini model updates, and modern engineering practices.
Travel may be required for this role. The amount of travel will vary from 0 to 100% depending on business need and client requirements.
Here's what you need
Bonus point if you have
Compensation at Accenture varies depending on a wide array of factors, which may include but are not limited to the specific office location, role, skill set, and level of experience. As required by local law, Accenture provides a reasonable range of compensation for roles that may be hired as set forth below.
We anticipate this job posting will be posted until 10/08/2026.
Accenture offers a market competitive suite of benefits including medical, dental, vision, life, and long-term disability coverage, a 401(k) plan, bonus opportunities, paid holidays, and paid time off. See more information on our benefits here:
Role Location Annual Salary Range
California $94,400 to $266,300
Colorado $94,400 to $230,000
Connecticut $94,400 to $230,000
District of Columbia $100,500 to $245,000
Illinois $87,400 to $230,000
Maine $80,400 to $196,000
Maryland $94,400 to $230,000
Massachusetts $94,400 to $245,000
Minnesota $94,400 to $230,000
New York $87,400 to $266,300
New Jersey $100,500 to $266,300
Ohio $87,400 to $213,000
Virginia $87,400 to $245,000
Washington $100,500 to $245,000
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