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Assistant Vice President

Job Description - Assistant Vice President

Description

Responsibilities


AI Architecture & Solution Design



  • Architect enterprise-grade GenAI solutions using LLMs, embeddings, and vector databases.

  • Design scalable RAG pipelines and knowledge-grounded AI systems.

  • Define agentic workflows with reasoning, tool usage, and memory capabilities.

  • Establish secure, compliant AI deployment architectures across cloud platforms.


Agentic AI & Automation



  • Design multi-agent systems for workflow automation and decision intelligence.

  • Implement orchestration logic, tool integration layers, and human-in-the-loop controls.

  • Define evaluation, guardrails, and monitoring frameworks for agent performance.


AI Platform Management & Operational Excellence



  • Establish standards and best practices for LLMOps / MLOps, covering the full model lifecycle from development to production.


 



  • Assess and select foundation models (OpenAI, open-source LLMs) for suitability, performance, and compliance in enterprise contexts.

  • Ensure AI solution efficiency and robustness by optimizing cost, latency, scalability, and system reliability.


Client Advisory & Pre-Sales Support



  • Act as AI solution architect in client discussions and transformation initiatives.

  • Lead PoCs, technical demonstrations, and innovation workshops.

  • Translate business objectives into scalable AI system designs.


Innovation & Enablement



  • Stay current with evolving GenAI and agent frameworks.

  • Develop architectural playbooks, reference patterns, and reusable accelerators.

  • Mentor engineering teams on best practices in AI system design.



 

Experience and Competency Requirements



  • 8-12 years of experience in AI/ML engineering and architecture.

  • Minimum 2-3 years hands-on experience with Generative AI systems.

  • Strong expertise in LLMs, RAG architectures, embeddings, and vector stores.

  • Experience designing and deploying production-grade AI applications.

  • Hands-on experience with cloud-native AI deployments (AWS / Azure / GCP).

  • Strong problem-solving and client-facing communication skills.

  • Ability to operate in a consulting or managed services environment.

  • Should have decent to good experience in data handling and analytics with python



 

Nice to have capabilities



  • Previous experience in pre-sales & consulting is preferred.

  • Experience leading enterprise AI transformation initiatives.

  • Exposure to industry-specific AI applications (Insurance, Healthcare, Banking, Media).

  • Experience integrating AI into large-scale operational workflows.



 

Skills


GenAI & LLM Frameworks (Mandatory)



  • OpenAI APIs / Azure OpenAI

  • LangChain / LangGraph / LlamaIndex

  • Transformers (Hugging Face)

  • Prompt engineering and evaluation frameworks


 


Agentic Systems & Orchestration



  • Multi-agent design patterns (MCP, A2A, ReAct etc)

  • Tool integrations and API orchestration

  • Memory frameworks and contextual reasoning

  • Guardrails, observability, and monitoring


Data & Infrastructure



  • Vector databases (Pinecone, FAISS, Weaviate or equivalent)

  • Python, FastAPI, REST services

  • Docker, Kubernetes

  • Cloud platforms (AWS, Azure, GCP)


Data Handling & Analytics Skills



  • Data preprocessing and ETL for structured and unstructured data

  • Data manipulation using Pandas, NumPy, and SQL

  • Exploratory data analysis (EDA) and statistical analysis

  • Data visualization (Matplotlib, Seaborn, Plotly, Tableau, Power BI)

  • Metrics design for AI evaluation, monitoring, and performance measurement

  • Knowledge of data quality, validation, and governance best practices


Advanced Capabilities



  • Fine-tuning and model evaluation

  • AI governance and responsible AI


Cost optimization and performance benchmarking



Responsibilities

Responsibilities


AI Architecture & Solution Design



  • Architect enterprise-grade GenAI solutions using LLMs, embeddings, and vector databases.

  • Design scalable RAG pipelines and knowledge-grounded AI systems.

  • Define agentic workflows with reasoning, tool usage, and memory capabilities.

  • Establish secure, compliant AI deployment architectures across cloud platforms.


Agentic AI & Automation



  • Design multi-agent systems for workflow automation and decision intelligence.

  • Implement orchestration logic, tool integration layers, and human-in-the-loop controls.

  • Define evaluation, guardrails, and monitoring frameworks for agent performance.


AI Platform Management & Operational Excellence



  • Establish standards and best practices for LLMOps / MLOps, covering the full model lifecycle from development to production.


 



  • Assess and select foundation models (OpenAI, open-source LLMs) for suitability, performance, and compliance in enterprise contexts.

  • Ensure AI solution efficiency and robustness by optimizing cost, latency, scalability, and system reliability.


Client Advisory & Pre-Sales Support



  • Act as AI solution architect in client discussions and transformation initiatives.

  • Lead PoCs, technical demonstrations, and innovation workshops.

  • Translate business objectives into scalable AI system designs.


Innovation & Enablement



  • Stay current with evolving GenAI and agent frameworks.

  • Develop architectural playbooks, reference patterns, and reusable accelerators.

  • Mentor engineering teams on best practices in AI system design.



 

Experience and Competency Requirements



  • 8-12 years of experience in AI/ML engineering and architecture.

  • Minimum 2-3 years hands-on experience with Generative AI systems.

  • Strong expertise in LLMs, RAG architectures, embeddings, and vector stores.

  • Experience designing and deploying production-grade AI applications.

  • Hands-on experience with cloud-native AI deployments (AWS / Azure / GCP).

  • Strong problem-solving and client-facing communication skills.

  • Ability to operate in a consulting or managed services environment.

  • Should have decent to good experience in data handling and analytics with python



 

Nice to have capabilities



  • Previous experience in pre-sales & consulting is preferred.

  • Experience leading enterprise AI transformation initiatives.

  • Exposure to industry-specific AI applications (Insurance, Healthcare, Banking, Media).

  • Experience integrating AI into large-scale operational workflows.



 

Skills


GenAI & LLM Frameworks (Mandatory)



  • OpenAI APIs / Azure OpenAI

  • LangChain / LangGraph / LlamaIndex

  • Transformers (Hugging Face)

  • Prompt engineering and evaluation frameworks


 


Agentic Systems & Orchestration



  • Multi-agent design patterns (MCP, A2A, ReAct etc)

  • Tool integrations and API orchestration

  • Memory frameworks and contextual reasoning

  • Guardrails, observability, and monitoring


Data & Infrastructure



  • Vector databases (Pinecone, FAISS, Weaviate or equivalent)

  • Python, FastAPI, REST services

  • Docker, Kubernetes

  • Cloud platforms (AWS, Azure, GCP)


Data Handling & Analytics Skills



  • Data preprocessing and ETL for structured and unstructured data

  • Data manipulation using Pandas, NumPy, and SQL

  • Exploratory data analysis (EDA) and statistical analysis

  • Data visualization (Matplotlib, Seaborn, Plotly, Tableau, Power BI)

  • Metrics design for AI evaluation, monitoring, and performance measurement

  • Knowledge of data quality, validation, and governance best practices


Advanced Capabilities



  • Fine-tuning and model evaluation

  • AI governance and responsible AI


Cost optimization and performance benchmarking



Qualifications

Bachelor’s degree required

M.Tech/ MS in Computer Science, AI, or related field preferred; Required Experience: 8-12 years



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