AI Solution Architect

Unison Group

Hyderabad

On-site

INR 3,000,000 - 6,000,000

Full time

2 days ago
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Job summary

Unison Group is seeking an experienced AI Solution Architect to drive an enterprise AI initiative from vision to execution in Hyderabad, India. You will shape AI strategy with C-level stakeholders and architect cloud-native GenAI and ML platforms on Azure and Databricks.

You will lead cross-functional teams across data science, MLOps and product engineering, presenting roadmaps to boards, and coaching engineers through production incidents and RAG pipelines.

Qualifications

  • 12+ years in data, analytics or software engineering.
  • 5+ years leading AI/ML platforms or products in enterprise."
  • Production delivery of ML/GenAI solutions at scale.

Responsibilities

  • Define and own AI strategy and multi-year roadmaps.
  • Lead AI/ML product lifecycle from discovery to value tracking.
  • Build and mentor agile delivery teams across data science, MLOps and product engineering.
  • Present complex options to executives with clarity and impact.

Skills

Azure
Databricks
Kubernetes
Docker
Terraform
CI/CD
Python
SQL
PySpark
MLflow
TensorFlow
Gurobi
Dataiku
SAS
Alteryx
OpenAI
LangChain
RAG
Milvus
NLP
Power BI
Tableau
Spotfire
Qlik
MLOps
Governance

Education

Bachelor's or Master's in CS/Engineering/Data Science

Tools

Azure Data Factory
Azure ML
Azure Synapse
Event Hubs
Key Vault
MLflow
Docker
Kubernetes

Job description

ROLE SUMMARY: We are looking for an AI Solution Architect who can take an enterprise AI initiative from vision to execution. You will shape AI strategy with C-level stakeholders, architect cloud-native GenAI and ML platforms on Azure and Databricks, and lead cross-functional teams across data science, MLOps and product engineering to deliver them. You are equally comfortable presenting a roadmap to a board, reviewing a RAG pipeline design and coaching an engineer through a production incident.

Experience
  • • 12+ years in data, analytics or software engineering, including 5+ years leading AI/ML platforms or products in an enterprise setting.
  • • Proven record of taking ML and GenAI solutions into production at scale, with measurable business impact.
  • • Hands-on delivery of at least one production LLM/RAG solution, plus hands-on experience with agentic AI patterns.
  • • Experience leading multidisciplinary teams and presenting to C-level executives.
  • • Bachelor's or master's degree in computer science, Data Science, Engineering, Statistics or a related field.
Cloud & MLOps:
  • Azure (ADF, Azure ML, Synapse, Event Hubs, Key Vault), Databricks, Kubernetes, Docker, Terraform, CI/CD
Data & ML:
  • Python, SQL, PySpark, MLflow, TensorFlow, Gurobi, Dataiku, SAS, Alteryx
GenAI & Agentic AI:
  • OpenAI and other LLMs, LangChain, Milvus / vector databases, RAG, prompt engineering, memory agents, NLP, LLM evaluation
BI & Visualisation:
  • Power BI, Tableau, Spotfire, Qlik
Leadership Competencies:
  • AI strategy and roadmap execution
  • AI/ML product lifecycle management
  • Responsible AI and governance
  • Stakeholder engagement and executive communication
  • Training, change management and AI adoption
  • Cross-functional team leadership
  • Vendor and partner collaboration
Nice to Have
  • • Certifications such as Azure Solutions Architect Expert, Azure AI Engineer, Databricks ML Professional or TOGAF.
  • • Experience with AWS or GCP AI services, or multi-cloud architectures.
  • • Industry exposure in financial services, energy, healthcare, manufacturing or the public sector.
  • • Experience designing or delivering AI training and enablement content.
SUCCESS IN THE FIRST 12 MONTHS
  • • An agreed AI roadmap and reference architecture adopted across key client engagements.
  • • At least two GenAI or ML solutions in production with tracked business value.
  • • A working Responsible AI and MLOps framework reused by delivery teams.
  • • A high-performing, cross-functional team and a strong bench of client executive relationships.
Reports to: Chief Executive Officer / Head of AI
AI Strategy & Leadership
  • • Define and own AI strategy and multi-year roadmaps aligned to client and C-level business priorities, with clear value metrics (revenue, cost, risk, productivity).
  • • Lead the full AI/ML product lifecycle: opportunity discovery, business case, architecture, build, deployment, adoption and value tracking.
  • • Build, mentor and lead agile delivery teams spanning data scientists, ML/MLOps engineers, data engineers and product managers.
  • • Act as a trusted advisor to executives, translating complex technical options into clear decisions on investment, risk and trade-offs.
Solution Architecture & Delivery
  • • Architect enterprise-grade, cloud-native AI/ML and analytics platforms on Azure (ADF, Azure ML, Synapse, Event Hubs, Key Vault) and Databricks.
  • • Design and deliver GenAI and agentic AI solutions: LLM integrations (OpenAI and others), retrieval-augmented generation (RAG), vector databases (e.g. Milvus), prompt engineering, memory-enabled agents and NLP pipelines.
  • • Establish MLOps foundations using MLflow, Docker, Kubernetes and Terraform for reproducible training, CI/CD, monitoring and scalable model serving.
  • • Set architecture standards, reference designs and reusable components that reduce time-to-production across engagements.
  • • Guide data and analytics solutions end to end, from pipelines (Python, SQL, PySpark) to optimisation (Gurobi) and BI dashboards (Power BI, Tableau, Spotfire, Qlik).
Responsible AI & Governance
  • • Define and embed Responsible AI practices: fairness, explainability, privacy, security, model risk management and human oversight.
  • • Design governance for GenAI, including evaluation frameworks, guardrails, hallucination and prompt-injection controls, cost monitoring and audit trails.
  • • Ensure solutions comply with relevant regulations and client policies (e.g. PDPA, GDPR, MAS FEAT principles where applicable).
Stakeholder, Change & Adoption
  • • Engage business, IT, security and risk stakeholders to align scope, secure buy-in and manage expectations.
  • • Lead training, change management and AI adoption programmes so solutions are used, trusted and sustained.
  • • Manage vendor and partner relationships (cloud providers, LLM providers, platform and SI partners), including evaluation, selection and commercial input.
  • • Produce clear executive communication: roadmaps, status reports, value realisation reviews and steering committee materials.
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