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AI Training

AI Training: Skills, hands-on learning, and responsible AI enablement to accelerate measurable business transformation.

Maayan AI Training builds the human capability required to become a Live Enterprise—an organization that is AI-powered, digitally agile, continuously learning, and resilient. While many businesses invest in AI tools, platforms, and pilots, lasting transformation only happens when people can understand, build, use, and govern AI responsibly. Without workforce readiness, AI initiatives stall: prototypes fail to scale, users don’t adopt copilots, teams can’t operationalize models, and leadership remains uncertain about risk and ROI.

Maayan Technologies approaches AI training as a strategic enablement program—not a generic workshop. We design training pathways that align to your business priorities, industry constraints, and technology stack. We help leadership teams understand where AI creates value and how to manage AI risk. We upskill engineers and data teams to build production-grade systems with MLOps/LLMOps. We train business functions to use AI tools and copilots effectively, with clear boundaries and responsible practices. Most importantly, we connect learning to execution through hands-on labs, capstone projects, and real-world use cases, ensuring training turns into capability.

Our training programs support multiple transformation outcomes:

  • Capability building: teams can deliver AI solutions independently or co-deliver with Maayan.

  • Adoption acceleration: business users can confidently use copilots and AI tools in daily workflows.

  • Operational maturity: teams can deploy, monitor, and continuously improve AI services reliably.

  • Governance readiness: compliance, security, and leadership can approve AI initiatives with confidence.

Whether you are launching an AI Center of Excellence, training a large workforce across business units, upskilling engineers for GenAI delivery, or building a university/industry AI learning program, Maayan AI Training provides the structure, labs, and execution linkage to make learning practical and impactful.

OfferingsEverything you need to know about

This track helps leaders make confident AI decisions—strategy, investment, governance, and measurable value.

  • AI & GenAI landscape: what’s real, what’s hype, what’s next

  • Live Enterprise model: AI-powered decisions, agility at scale, always-on learning

  • AI value mapping: use-case identification and ROI frameworks

  • AI governance and responsible AI: risk, auditability, compliance, and controls

  • Operating models: AI CoE, build-vs-buy, vendor strategy, talent planning

  • Change management: adoption, communication, workforce impact, and ethics

Outcome: leaders can approve AI initiatives with clarity and reduce transformation risk.

These pathways help non-technical teams leverage AI responsibly and effectively.

  • Using AI copilots and enterprise AI tools safely

  • Prompting for productivity (without exposing sensitive information)

  • Decision support: interpreting AI outputs, validation, and human oversight

  • Process improvement with AI automation concepts

  • Function-specific modules:

    • Sales & Marketing: personalization, content ops, lead scoring, customer insights

    • Customer Service: triage, knowledge assistants, quality monitoring

    • Finance: forecasting, reconciliation automation, fraud/risk concepts

    • HR: policy copilots, talent analytics, employee experience automation

    • Operations & Supply Chain: demand forecasting, anomaly detection, scheduling concepts

Outcome: faster adoption and better AI usage quality across functions.

AI success depends on data quality and governance. This track supports data engineers, analysts, and platform teams.

  • Data architectures: lakehouse, warehouse, streaming, event-driven pipelines

  • Data quality, lineage, and governance essentials

  • Feature engineering concepts and feature store fundamentals

  • Dataset versioning, labeling workflows, and reproducibility

  • Privacy and access controls: data residency, encryption, and role-based access

  • Instrumentation for marketing and product analytics (events, attribution basics)

Outcome: a data foundation that supports reliable models and scalable AI systems.

This program trains teams to build and evaluate ML systems with professional engineering discipline.

  • Supervised learning, unsupervised learning, anomaly detection

  • Model evaluation: accuracy, precision/recall, calibration, bias checks (where relevant)

  • Feature engineering and model selection

  • Time-series forecasting: demand, operations, predictive maintenance

  • Deep learning fundamentals and practical use

  • Explainability techniques for high-stakes use cases

  • Deployment basics: APIs, batch scoring, latency considerations

Outcome: teams can build robust ML models and deploy them in business workflows.

This track is designed for developers building GenAI applications for enterprises.

  • GenAI fundamentals: LLM capabilities and limitations

  • Prompt engineering and prompt patterns (with guardrails)

  • Retrieval-Augmented Generation (RAG): ingestion, chunking, embeddings, vector search

  • Building enterprise search with citations and role-based access boundaries

  • Evaluation harnesses for GenAI: relevance, hallucination testing, regression tests

  • Safety patterns: refusal behavior, sensitive data handling, escalation flows

  • Cost and performance: caching, retrieval tuning, latency optimization

Outcome: teams can build secure, reliable GenAI copilots beyond “chatbot demos.”

This program trains teams to build AI systems that can take actions safely.

  • Agent architectures: tool calling, planning, memory, policies

  • Workflow orchestration and integration with enterprise systems

  • Human-in-the-loop controls and approval gates

  • Action logging, audit trails, and governance models

  • Testing and monitoring agent behavior

  • Reliability patterns: fallbacks, retries, bounded actions, safe termination

Outcome: teams can design agentic automation responsibly with enterprise controls.

For industries that use imaging, inspection, surveillance, and perception systems.

  • Object detection and segmentation

  • OCR and document vision

  • Video analytics fundamentals

  • Dataset collection, labeling workflows, and drift management

  • Edge inference design: deployment constraints and monitoring

  • Evaluation metrics and real-world testing practices

Outcome: teams can build and deploy vision solutions reliably in operational environments.

This track industrializes AI by training platform teams and ML engineers on operations.

  • CI/CD for ML and GenAI applications

  • Model registry, versioning, approvals

  • Monitoring for drift, performance, data issues

  • Retraining pipelines and release management

  • LLMOps: prompt/version management, retrieval monitoring, safety regression tests

  • Observability dashboards and incident response playbooks

  • FinOps for AI: cost visibility, usage governance, and resource allocation

Outcome: AI systems remain stable, secure, and continuously improving in production.

For risk, compliance, legal, and cybersecurity stakeholders.

  • Responsible AI concepts: fairness, explainability, privacy, accountability

  • Threats and risks in GenAI: data leakage, prompt injection, unsafe outputs

  • Governance controls: policy, audit logs, approvals, model documentation

  • Evaluation and red-teaming approaches

  • Secure architecture patterns for AI systems

  • Regulatory alignment guidance (high-level, organization-specific)

Outcome: better risk control and improved trust for scaling AI.

Maayan emphasizes learning-by-building. We provide guided labs and capstones using your context:

  • Build a RAG-based internal assistant with citations and access controls

  • Develop a churn prediction model and deploy it to a dashboard

  • Create a document automation pipeline for invoices or forms

  • Develop a demand forecasting model and integrate outputs into planning

  • Build an agentic workflow for ticket triage and resolution suggestions

Outcome: training turns into deployable assets, not just classroom knowledge.

Our Differentiators

We don’t treat training as a one-time event. We design it as a continuous learning system:

  • skill baselines → training → capstones → assessment → ongoing community and refreshers
    This aligns perfectly with Maayan’s Live Enterprise vision.

Most training is generic. Maayan builds pathways for different roles:

  • leaders, business users, analysts, developers, ML engineers, platform admins, compliance teams
    This ensures relevance, faster adoption, and better retention of learning.

We connect training to real problems and real data contexts (where possible). Learners don’t just watch demos—they build systems with measurable outputs.

We teach what is required to deploy AI safely: evaluation, monitoring, governance, and operational playbooks. This reduces the “prototype trap.”

We embed responsible AI practices across programs instead of isolating it in a single session. Teams learn how to use AI safely as part of everyday work.

We help organizations scale training internally through:

  • train-the-trainer programs

  • course materials and lab kits

  • competency frameworks and certification pathways

  • CoE alignment and learning governance

Outcomes

Maayan AI Training produces measurable outcomes in capability, adoption, speed, and governance readiness.

Industry Offerings

Maayan AI Training is designed for organizations that want outcomes fast, without sacrificing trust, security, or scalability.

get in touchWe are always ready to help you and answer your questions

At Maayan Tech, we are committed to providing exceptional service and support. Your questions, feedback, and inquiries are important to us, and we will do our best to respond promptly. Whether you’re a business seeking technology solutions or an individual with a query, we are here to assist you.

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