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idrica

idrica

Solution Architect

Company

idrica

Role

Solution Architect

Location

Location not specified

Job type

-

Found on Mokaru

2 days ago

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Salary

Not disclosed by employer

Job description

THE ROLE

We are seeking an experienced, highly adaptable, curious, and fast-thinking AI Solutions Architect to design, prototype, and deliver innovative AI capabilities across internal use cases. The ideal candidate combines strong foundational understanding of AI/ML technologies with a proactive drive to stay ahead of industry advancements, especially in generative AI and emerging architectures.

This role bridges business needs and technical execution, architecting dynamic solutions that leverage LLMs, traditional ML, data pipelines, RAG, agents, and enterprise integrations.

CORE RESPONSIBILITIES

Solution Architecture & Innovation

Translate business challenges into well-scoped AI solutions, balancing feasibility, value, cost, and speed.

Architect end-to-end AI systems, including data ingestion, model training, inference pipelines, monitoring, and governance.

Design and refine LLM/RAG architectures, agent workflows, and prompt engineering patterns

Rapidly explore emerging tools/techniques to extend AI capabilities across the organization

Build reusable reference architectures and best practices for internal teams

Technical Leadership & Execution

Partner with engineering, data science, and product teams to guide implementation

Conduct PoCs, prototypes, and pilots to validate technical suitability before scaling

Ensure solutions meet performance, security, compliance, and cost-efficiency requirements

Integrate AI capabilities into existing systems, both cloud and legacy

Work with MLOps/DevOps to establish robust CI/CD, observability, and lifecycle management

Strategy, Governance & Cross-Functional Collaboration

Complement the Product team by defining the technical AI/ML roadmap, assessing feasibility, shaping the use-case pipeline, and specifying the architecture required to deliver prioritized initiatives

Provide expertise on responsible AI, privacy, and risk-aware design

Communicate complex concepts to stakeholders at all levels

Mentor engineers and data scientists on architecture, quality, and emerging AI capabilities

QUALIFICATIONS

Education

Bachelor's or Master's degree in Computer Science, Engineering, or related field. OR equivalent work experience.

Additional certifications in AI/ML technologies are preferred

Technical Background

7+ years in solution architecture with proficiency in data architecture, including data pipelines, warehousing / Lakehouse concepts, APIs and integration patterns

Strong understanding of security, privacy, compliance, and responsible AI principles, including access control, data protection, and risk mitigation

Deep understanding of machine learning, generative AI, LLMs, RAG, prompt engineering, vector databases, and model evaluation frameworks

Experience translating business requirements into solution architectures, technical roadmaps, and implementation plans

Experience working cross-functionally with engineering, product, data teams, and business stakeholders to deliver measurable outcomes

Knowledge of MLOps/LLMOps practices such as CI/CD, model monitoring, observability, versioning, governance, and lifecycle management

Mindset & Soft Skills

Exceptionally curious, adaptive, and proactive, stays ahead of fast-changing AI technologies

Fast learner with ability to shift between conceptual and hands-on tasks

Strong problem solver with a “builder” mentality

Comfortable with ambiguity, rapid experimentation, and iterative design

Excellent communicator to both technical and business audiences

Collaborative and supportive partner to cross-functional teams

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