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Generative AI Engineer

Early Applicant
  • Posted 28 days ago
  • Over 50 applicants have applied

Job Description

Data Science GENAI Engineer

Role Summary

We are looking for a hands-on Data Science GENAI Engineer to develop and implement AI/ML models and pipelines for enterprise data management use cases — including automated data profiling, semantic mapping, cleansing, validation, enrichment, and deduplication. The candidate will work under the guidance of the AI Architect to build, test, and deploy intelligent automation components.

Mandatory skills

The JD belongs to Application Engineering using core python , genai harnesses and the rest of skills are the required substacks

Agentic AI / GenAi Engineer with experience of building models and preparing data for AI across platforms and cloud environment

Experience of deploying workloads and leveraging AI via Azure and AWS primarily

Agentic AI , GenAI and understanding of building AI/ML models

Key Responsibilities

Develop and implement AI/ML models for automated schema discovery, data profiling, and statistical analysis of enterprise data sets.

Build semantic mapping solutions using NLP and LLM techniques — generating source-to-target field mappings with confidence scoring.

Implement automated data cleansing and standardization logic — format normalization, unit conversion, naming convention enforcement, and industry-specific rule application.

Develop validation pipelines using AI-inferred rules based on target system metadata — including mandatory field checks, referential integrity, and business rule enforcement.

Build enrichment modules to identify and fill missing data attributes using external reference sources and domain knowledge bases.

Implement deduplication solutions using exact and fuzzy matching algorithms; configure survivorship logic and golden record creation.

Create dashboards and reports for data quality metrics, mapping confidence, exception tracking, and load readiness indicators.

Capture learnings and outputs into reusable knowledge repositories — mapping dictionaries, rule libraries, and exception pattern catalogs.

Required Skills & Qualifications

3–5 years of experience in AI/ML engineering, applied AI, or data engineering with AI/ML components.

Strong proficiency in Python and AI/ML libraries — scikit-learn, TensorFlow, PyTorch, Hugging Face Transformers, LangChain, or similar.

Experience applying LLMs and NLP to data tasks — semantic matching, entity resolution, schema mapping, anomaly detection, and text classification.

Working knowledge of data quality techniques — profiling, cleansing, deduplication (exact and fuzzy), standardization, and enrichment.

Familiarity with cloud platforms (AWS, Azure, or GCP) — ML/AI services (SageMaker, Azure ML, Vertex AI) and data services (S3, Glue, Databricks).

Understanding of ETL/ELT concepts, data pipeline design, and metadata-driven automation approaches.

Ability to build visualizations and reports using Python libraries (Matplotlib, Plotly, Streamlit) or BI tools for data quality KPIs.

Good understanding of common enterprise data objects — Items, Vendors, Customers, BOMs, Purchase Orders, Invoices, Inventory.

Familiarity with version control (Git) and collaborative development practices.

Preferred

Exposure to ERP data loading formats (IDOCs, BAPIs, flat file imports, API-based loading).

Experience in Healthcare, MedTech, or Manufacturing data domains.

Prior experience building AI/ML models for data quality, entity matching, or data classification use cases.

Education

Bachelor's or Master's degree in Computer Science, Data Science, Artificial Intelligence, or a related field.

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About Company

Job ID: 151282549

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