GenAI Solution Designer Developer

Danta Technologies

$130K — $160K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 10+ years of experience in GenAI solution design and development
  • Proficiency in building LLM-powered applications with RAG and vector search
  • Expertise in developing Copilot-based AI assistants for enterprise applications
  • Strong background in engineering end-to-end GenAI pipelines including prompt engineering
  • Familiarity with Snowflake Cortex and AI-driven analytics workflows
  • Hands-on knowledge of AI/ML algorithms and cloud platforms (AWS, Azure)
  • Proficient in programming languages such as Python, SQL, and PySpark

Responsibilities

  • Design and build LLM-powered applications using RAG and embedding techniques
  • Develop and customize Copilot assistants with Microsoft Copilot Studio
  • Integrate AI copilots with enterprise systems and automate workflows
  • Engineer end-to-end pipelines for AI solutions, emphasizing response orchestration
  • Implement data pipelines for structured and unstructured data in AI models
  • Create scalable models and monitor deployment using Azure OpenAI and AWS Bedrock
  • Enable responsible AI features, including role-based access and knowledge grounding

Benefits

  • Competitive compensation package for W2 employees
  • Options for healthcare insurance including Dental, Medical, and Vision
  • Paid time off for major holidays
  • Sick leave as per state law
Full Job Description
Note:
This position is based in Dallas, TX and requires 5 days per week working from the office.

Experience level: 10+ years

Must Have:
GenAI Solution Design & Development
  • Design and build LLM-powered applications using RAG, embeddings, and vector search architectures
  • Develop Copilot-based AI assistants and agents for enterprise use cases (automation, Q&A, workflow orchestration)
  • Engineer end-to-end GenAI pipelines including prompt engineering, context handling, and response orchestration
  • Build reusable AI components (agents, pipelines, guardrails) to accelerate solution delivery
Copilot & AI Agent Development
  • Develop and customize copilots using Microsoft Copilot Studio / Azure Foundry
  • Integrate copilots with enterprise systems (ERP, CRM, ServiceNow, APIs)
  • Design conversational workflows, triggers, and automation actions
  • Enable enterprise-grade features such as:
  • Role-based access and identity integration
  • Knowledge grounding using enterprise data
  • Responsible AI guardrails (toxicity, hallucination control)
Snowflake Cortex / Data AI Engineering
  • Develop AI-powered applications using Snowflake Cortex AI functions and Snowpark
  • Implement vector search, semantic models, and AI-driven analytics workflows
  • Integrate structured and unstructured data pipelines to support AI models
  • Build self-service AI capabilities on data platforms with governance and cost optimization
I/ML Engineering & MLOps
  • Build and deploy models using Azure OpenAI, AWS Bedrock, or similar platforms
Create scalable pipelines for:
  • Model deployment
  • Monitoring and observability
  • Continuous improvement loops
Good to have:
Implement AI guardrails, evaluation frameworks, and feedback loops for production systems:
  • SDLC Automation with GenAI
  • Leverage tools like GitHub Copilot for:
  • Code generation, test automation, debugging, and documentation
  • utomate SDLC activities using GenAI (requirements 12 code 12 testing 12 deployment)
  • Enable developer productivity improvements and automation-first engineering
  • GenAI/LLM solutions (RAG, vector databases, prompt orchestration)
  • lign business priorities with AI outcomes with tangible outcomes and optimizations
  • Define and curate strategy for Model training, inference, and monitoring, AI OPS, AI governance elements: Responsible AI, fairness, and explainability
  • Integrate GenAI into enterprise workflows (chatbots, copilots, knowledge assistants) as applicable and adoptable for relevant business operations, architecting solutions across Azure, AWS
  • Manage AI /Ops and related governance from data collection to retraining and monitoring model drifts
Technical Skills:
  • Hands-on knowledge of data models, SQL, and data lifecycle management
  • Strong knowledge of AI/ML algorithms, data structures, and performance optimization.
  • Proficiency in programming languages such as Python, SQL, and PySpark.
  • Experience with cloud platforms (AWS, Azure) and big data technologies (Spark, Snowflake)


Benefits: Danta offers a compensation package to all W2 employees that are competitive in the industry. It consists of competitive pay, the option to elect healthcare insurance (Dental, Medical, Vision), Major holidays and Paid sick leave as per state law.

The rate/ Salary range is dependent on numerous factors including Qualification, Experience and Location.

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