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mojiTMJ/README.md

๐Ÿš€ Welcome to Moji's Data & AI Universe!

Where Data Meets Intelligence ๐Ÿง โœจ

Typing SVG

๐ŸŽฏ About Me

class DataArchitect:
    def __init__(self):
        self.name = "Moji"
        self.role = "Data & AI Architect"
        self.location = "Milan, Italy ๐Ÿ‡ฎ๐Ÿ‡น"
        self.status = "Freelance Professional"
        self.specialization = "Data & AI Engineering"
        self.motto = "Turning Data into Intelligence"
        
    def get_current_focus(self):
        return [
            "Building scalable data pipelines",
            "Designing AI architectures",
            "Optimizing ML workflows",
            "Chess strategy optimization ๐Ÿ"
        ]

Core strengths:

  • Event-driven lakehouse governance with data contracts and quality gates
  • MLOps on Azure, AWS, and hybrid GPU clusters with FinOps discipline
  • Graph analytics with Neo4j and feature engineering for fraud/recsys
  • Observability, SLOs, and cost-aware architecture reviews

๐Ÿ› ๏ธ Tech Arsenal

๐Ÿš€ Featured Impact

  • Event-driven lakehouse โ€“ Cut batch ETL runtime by 35% while serving 5B+ monthly events for downstream analytics.
  • Multi-cloud LLM platform โ€“ Deployed resilient inference across Azure + AWS with 99.9% uptime and autoscaling GPU clusters.
  • Real-time fraud signals โ€“ Built streaming graph features on Neo4j that reduced false positives by 22%.
  • LLMOps control plane โ€“ Established evals + rollout guardrails to keep latency steady during 10x traffic spikes.

๐Ÿ’ป Programming Languages

Python JavaScript Shell Script

โ˜๏ธ Cloud Platforms

Azure AWS Oracle Cloud Google Cloud

๐Ÿ—„๏ธ Databases & Data Tech

SQL Server MongoDB Neo4j


๐Ÿ“Š GitHub Analytics

GitHub Streak


๐ŸŽฏ What I'm Working On

๐ŸŽฏ **Current Focus (with outcomes)** - Accelerating ingestion and transformation to keep nightly SLAs **< 45 minutes** for enterprise BI. - Shipping a **feature store** that cuts ML model drift by giving teams fresher signals **2x faster**. - Hardening **MLOps** with blue/green rollouts and **p95 latency < 120ms** for customer-facing APIs. - Coaching teams on **event-driven architectures** and **data contracts** to reduce rework by **30%**. - Piloting **RAG for analytics** to surface trusted metrics with **<1% hallucination** in exec dashboards.

๐Ÿ† Achievement Unlocked

๐ŸŽพ Tennis Enthusiast โ™Ÿ๏ธ Chess Strategist ๐Ÿ”ง Pipeline Optimizer ๐ŸŒ Multi-Cloud Expert
Serving aces on and off the court Always thinking 5 moves ahead Making data flow like poetry Architecting across all clouds

๐ŸŽฎ Fun Zone

๐ŸŽฒ Random Dev Joke

Jokes Card

๐Ÿƒโ€โ™‚๏ธ Current Status

๐Ÿ”ฅ Building the future of data architecture
๐ŸŽพ Perfecting my backhand
โ™Ÿ๏ธ Analyzing chess positions
โ˜• Fueled by espresso (it's Milan, after all!)

Chess strategy sharpens my design thinking, and tennis keeps my iteration cycles fast.


๐Ÿ“ Latest Writing & Talks

graph TD
    A[๐Ÿง  AI Architecture] --> B[Data Pipeline Optimization]
    A --> C[ML Model Deployment]
    B --> D[Real-time Analytics]
    C --> E[Scalable Solutions]
    D --> F[๐Ÿš€ Production Ready]
    E --> F
    
    style A fill:#1E3A8A,stroke:#3B82F6,stroke-width:2px,color:#fff
    style F fill:#059669,stroke:#10B981,stroke-width:2px,color:#fff
Loading

Data Contracts in Practice โ€“ How schema governance cut rework across 20+ teams. (Link: coming soon) Scaling LLM Inference on GPUs โ€“ Patterns that kept costs predictable during traffic spikes. (Link: blog / deck) Graph Features for Fraud โ€“ Why Neo4j centrality scores boosted detection precision. (Link: notebook)


๐Ÿ“ˆ Contribution Graph

Moji's GitHub Activity Graph


๐Ÿค Let's Connect!

๐Ÿ’ฌ "Always up for a challengeโ€”whether it's optimizing data pipelines or finding a killer move in chess!"

๐Ÿ“ฌ Availability: Open for freelance architecture sprints and technical leadership engagements. ๐Ÿ”— Reach out: LinkedIn โ€ข Email

Profile Views



๐Ÿš€ Built with passion in Milan | ๐ŸŽฏ Crafted for the GitHub community

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