Accenture

Accenture

Posted via Workday

Knowledge Engineer

Posted Sep 20, 2026

Role at a glance

Job function
AI & Data AI Search & Retrieval Engineering Large Language Model (LLM) Engineering
Salary
Not Disclosed
Location
Bengaluru
Work arrangement
On-site
Employment
Full-time
Experience
Minimum 5 year(s) of experience is required
Education
15 years full time education

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Role Summary

AI-generated

The Knowledge Engineer is a hands-on individual contributor building scalable knowledge graphs, semantic layers, ontologies, and AI-enabled data solutions using Snowflake Data Cloud capabilities. The role covers the knowledge graph lifecycle from ingestion and modeling through curation, integration, deployment, and application to business problems across client industry domains.

What You'll Do

  • Build Snowflake-based knowledge engineering components using warehouses, Snowpark, Cortex/AI capabilities, Streams/Tasks, Native...
  • Implement semantic data pipelines, graph enablement components, ontology and schema pipelines, vector and search integrations, LLM...
  • Design, develop, configure, test, and implement AI and semantic solutions that integrate with broader enterprise systems.
  • Design, evaluate, maintain, and deploy ontologies, schemas, mappings, graph data models, metadata structures, validation rules, and...
  • Collaborate with project teams, delivery leads, engineers, architects, users, use case representatives, and UI designers to deliver...
  • Communicate implementation progress, risks, dependencies, technical findings, design rationale, validation inputs, data quality...

Generated from the employer's posting. Verify important details before applying.

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Qualifications

Required: Bachelor's degree or equivalent in Computer Science, Information Technology, Engineering, Mathematics, Data Science, or a related field; Neo4j or equivalent graph database experience; knowledge graph technologies including RDF, SPARQL, LPG, SHACL, OWL, graph query languages, schema design, ontology management, and KG curation; schema design, semantic modeling, taxonomy management, metadata management, and knowledge graph solution development; relational databases, object stores, graph databases, and vector databases; Snowflake-enabled knowledge engineering solutions; 2+ years of Python and SQL; NLP or search, prompt engineering, LLMs, retrieval-augmented generation, vector search, semantic search, and enterprise-scale AI application patterns; ability to work as a strong individual contributor and collaborate across project teams.

Required

  • Neo4j
  • Bachelor's degree or equivalent in Computer Science, Information Technology, Engineering, Mathematics, Data Science, or a related field
  • RDF
  • SPARQL
  • LPG
  • SHACL
  • OWL
  • Graph query languages

Preferred

  • Snowflake Data Warehouse
  • AWS, Azure, or GCP
  • Snowflake certification
  • Team lead exposure or readiness to guide junior engineers
  • External client-facing consulting experience
  • Graph RAG
  • Agentic systems
  • Entity resolution

Original job description

Content provided by the employer

Project Role : Knowledge Engineer
Project Role Description : Design and structure knowledge frameworks that enable AI systems to reason and make informed decisions. Capture and translate expert and unstructured knowledge into ontologies, knowledge graphs, and semantic models, ensuring accuracy and context for automation and insights. Apply advanced analytics on knowledge graphs to drive problem-solving and actionable insights.
Must have skills : Neo4j
Good to have skills : Snowflake Data Warehouse
Minimum 5 year(s) of experience is required
Educational Qualification : 15 years full time education

Role Summary / Description

AI Powered Tech Talent

Engineer role in Knowledge Engineering for a strong individual contributor who helps build scalable Knowledge Graph, semantic layer, ontology, and AI-enabled data solutions using Snowflake Data Cloud capabilities. The role works hands-on across the knowledge graph lifecycle from ingestion through modeling, curation, implementation, integration, and deployment. The role applies current methodologies, generative AI, LLM, multimodal, graph, search, and semantic techniques to practical business problems while collaborating with users, use case representatives, engineers, architects, UI designers, and delivery teams. The role must include industry experience or project exposure in domains such as banking, insurance, healthcare, retail, telecom, manufacturing, energy, public sector, or life sciences.

Key Responsibilities
Build Snowflake-based knowledge engineering components using Snowflake warehouses, Snowpark, Cortex/AI capabilities, Streams/Tasks, Native Apps/Streamlit, secure data sharing, governance features, APIs, and cloud storage integrations.
Implement Snowflake semantic data pipelines, graph enablement components, ontology/schema pipelines, vector and search integrations, LLM grounding layers, and governed access patterns.
Build Knowledge Graph components that contribute to transforming a client's data architecture.
Design, develop, configure, test, and implement AI and semantic solutions that integrate clearly with the broader enterprise system.
Work alongside project teams, delivery leads, engineers, architects, users, use case representatives, and UI designers to deliver assigned components of an end-to-end solution.
Build solid working relationships with client counterparts on the workstream and communicate implementation progress, risks, dependencies, and technical findings clearly.
Help assemble supporting evidence for recommended semantic layer solutions, including design rationale, implementation notes, validation inputs, data quality observations, and test outcomes.
Support sales, solutioning, demos, accelerators, or reusable assets when called upon by providing technical inputs or implementation examples.
Design, evaluate, maintain, and deploy ontologies, schemas, mappings, graph data models, metadata structures, validation rules, and knowledge graph components as needed.
Keep developing skills in cutting-edge Data and AI solutions, especially agentic technologies, generative AI, LLMs, multimodal models, semantic search, graph RAG, and knowledge graph approaches.
Share learnings with the team and help junior engineers understand practical development patterns, engineering standards, and knowledge graph implementation practices.

Required Qualifications
Bachelor's degree or equivalent in Computer Science, Information Technology, Engineering, Mathematics, Data Science, or a related field.
Minimum 2 years of experience with Knowledge Graph technologies such as RDF, SPARQL, LPG, SHACL, OWL, graph query languages, schema design, ontology management, and KG curation.
Minimum 2 years of experience in schema design, ontology management, semantic modeling, taxonomy management, metadata management, and knowledge graph curation.
Minimum 2 years designing and developing Knowledge Graph solutions and graph-based ML models across functional and technical contexts.
Minimum 1 year of experience with end-to-end data pipeline implementation for AI applications, especially LLM-enabled or enterprise knowledge applications, with hands-on design and configuration.
Minimum 2 years of experience with relational databases, object stores, graph databases such as Stardog, Neo4j, Amazon Neptune or equivalent, and vector databases.
No leadership or commercial ownership requirement at this band team lead exposure is good to have.
Ability to work hands-on as a strong individual contributor while collaborating across project teams and delivery workstreams.

Required Skills/ Experience
Hands-on experience building Snowflake-enabled knowledge engineering solutions with warehouses, Snowpark, Cortex/AI capabilities, Streams/Tasks, Native Apps/Streamlit, secure data sharing, governance features, APIs, and cloud storage integrations.
2+ years of Python and SQL experience with frameworks and tools such as TensorFlow, PyTorch, dbt, SPARQL, SHACL, Apache Airflow, Apache NiFi, APIs, and ETL pipeline development.
Practical experience with NLP and/or search techniques, prompt engineering, LLMs, retrieval-augmented generation, vector search, semantic search, and enterprise-scale AI application patterns.
Ability to formulate real-world problems into practical, efficient, and scalable AI and Knowledge Graph solution components on Snowflake.
Industry experience applying Snowflake-enabled knowledge engineering solutions in banking, insurance, healthcare, retail, communications, manufacturing, energy, public services, life sciences, or another relevant domain.
Ability to build Snowflake-based components for semantic layer, ontology, graph, vector search, search, retrieval, and LLM grounding use cases.

Good to Have Skills
2+ years of hands-on experience with cloud/data platforms, with Snowflake specialization and exposure to AWS, Azure, or GCP in multi-cloud environments.
Snowflake certification or hands-on project experience in Snowflake data engineering, Snowpark, data cloud architecture, or AI/data platform delivery.
Team lead exposure or readiness to guide junior engineers on project tasks.
External client-facing consulting experience, including working with client stakeholders, delivery teams, or solutioning teams.
Broad experience in diverse ML techniques, graph RAG, agentic systems, semantic search, entity resolution, multimodal models, explainable AI, and responsible AI practices.
Experience building reusable code components, implementation templates, design notes, demos, proof-of-concept assets, runbooks, or enablement material. AI Powered Tech Talent

15 years full time education

About Accenture

Accenture is a leading global professional services company that helps the world’s leading businesses, governments and other organizations build their digital core, optimize their operations, accelerate revenue growth and enhance citizen services—creating tangible value at speed and scale. We are a talent- and innovation-led company with approximately 791,000 people serving clients in more than 120 countries. Technology is at the core of change today, and we are one of the world’s leaders in helping drive that change, with strong ecosystem relationships. We combine our strength in technology and leadership in cloud, data and AI with unmatched industry experience, functional expertise and global delivery capability. Our broad range of services, solutions and assets across Strategy & Consulting, Technology, Operations, Industry X and Song, together with our culture of shared success and commitment to creating 360° value, enable us to help our clients reinvent and build trusted, lasting relationships. We measure our success by the 360° value we create for our clients, each other, our shareholders, partners and communities.

Visit us at www.accenture.com 

Equal Employment Opportunity Statement


We believe that no one should be discriminated against because of their differences. All employment decisions shall be made without regard to age, race, creed, color, religion, sex, national origin, ancestry, disability status, military veteran status, sexual orientation, gender identity or expression, genetic information, marital status, citizenship status or any other basis as protected by applicable law. Our rich diversity makes us more innovative, more competitive, and more creative, which helps us better serve our clients and our communities.

Accenture

About the company

Accenture

Large Enterprise

Accenture is a global professional services company that specializes in providing consulting, technology, and outsourcing services. With a diverse range of industries served, including financial services, healthcare, and telecommunications, Accenture leverages advanced technologies and data analytics to help organizations improve their performance and drive innovation. Committed to sustainable progress, the company emphasizes its dedication to inclusivity, digital transformation, and building a more sustainable future for its clients and communities. With a presence in over 120 countries, Accenture is known for its expertise in integrating cutting-edge solutions that address complex business challenges.