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  • $19,999.00
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    ABS AI Workstation - 72GB VRAM (NVIDIA RTX PRO 5000 Blackwell 72GB), Intel Xeon W5-2455X, 128GB ECC DDR5 RDIMM, 2TB+4TB NVMe M.2, 2000W 80+ Gold, Ubuntu (Zaurion ZAW5-2455X-RP500072)

    • Item #: 9B-89-850-010
    • Mfr. Part #: ZAW5-2455X-RP500072
    • 2x RTX Pro 6000 Blackwell MaxQ | Threadripper PRO 7975WX | 128GB DDR5 | 2TB+4TB SSD
    • 2x RTX Pro 6000 Blackwell MaxQ | Xeon W9-3575X | 128GB DDR5 | 2TB+4TB SSD
    • 3x AMD Radeon AI Pro R9700 | Threadripper 9965WX | 128GB DDR5 | 2x 2TB M.2
    • 3x Intel Arc Pro B70 | Threadripper 9965WX | 128GB DDR5 | 2x 2TB M.2
    • RTX Pro 6000 Blackwell | Threadripper PRO 7975WX | 128GB DDR5 | 2TB+4TB SSD
    • RTX Pro 6000 Blackwell | Threadripper PRO 7975WX | 64GB DDR5 | 1TB+2TB SSD
    • RTX Pro 6000 Blackwell | Xeon W5-2455X | 64GB DDR5 | 1TB+2TB SSD
    • RTX Pro 6000 Blackwell | Xeon W9-3575X | 128GB DDR5 | 2TB+4TB SSD
    • 2x RTX Pro 5000 Blackwell 72GB | Threadripper PRO 9975WX | 128GB DDR5 | 2TB+4TB SSD
    • 2x RTX Pro 5000 Blackwell 72GB | Xeon W9-3575X | 128GB DDR5 | 2TB+4TB SSD
    • RTX Pro 5000 Blackwell 72GB | Threadripper PRO 9965WX | 128GB DDR5 | 2TB+4TB SSD
    • RTX Pro 5000 Blackwell 72GB | Xeon W5-2455X | 128GB DDR5 | 2TB+4TB SSD
    • Compliance Documents Required for Purchase
    • Assembled in USA
    • TAA Compliant
    • Operating System: Ubuntu
    • CPU: Intel Xeon W5-2455X
    • GPU: RTX Pro 5000 Blackwell (72GB GDDR7)
    • Motherboard: Gigabyte MW83-RP0
    • Memory: 128GB DDR5 Server RAM - ECC, Registered
    • OS SSD: 2TB M.2 NVMe (Installed)
    • Data SSD: 4TB M.2 NVMe (Installed)
    • LAN: 2 x 10GB/s LAN, 1 x 10/100/1000 Mbps Management LAN
    • PSU: Single 2000W ATX 80 PLUS Gold power supply
    • Barebone: Gigabyte W773-W80
    • AI Agent Ready: Optional pre-installed OpenClaw (enterprise AI agent framework)
    • Local LLM Support: Optional Qwen 3.5 27B or higher models for on-prem AI inference
    Please note that this product is non-returnable and non-refundable.
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    Overview
    Specs
    Reviews
    ABS Zaurion Ruby Tower · The Accessible 72GB Tier

    Enter at 72GB.

    Intel Xeon W5-2455X  +  NVIDIA RTX PRO 5000 Blackwell 72 GB

    A 12-core, 24-thread Intel Xeon keeps the accessible entry point into this GPU memory tier affordable, without shrinking the GPU that matters. 72 GB of GDDR7 is enough to develop, fine-tune, and run local AI models in the tens of billions of parameters — right on the desk beside you. Kick off a fine-tuning run before a meeting, and it's done by the time you're back — the kind of local iteration speed that turns "let's check tomorrow" into "let's check right now."

    72 GB Professional GPU 128 GB DDR5 Ubuntu Ready Assembled in USA · TAA
    Warm sunlit home-office workspace with a compact matte-black tower workstation standing on the floor beside a wooden desk
    72 GB
    GDDR7 GPU memory
    12c / 24t
    Intel Xeon W5-2455X
    128 GB
    DDR5, ECC Registered
    6 TB
    NVMe SSD storage installed
    2000 W
    80 PLUS Gold PSU
    AI Silicon Spotlight · Hardware First

    What This Pairing Actually Buys You

    An accessible CPU tier next to a memory-rich professional GPU, sized for real local AI work rather than benchmarks:

    GPU · NVIDIA RTX PRO 5000 Blackwell

    72 GB of GDDR7 for Local Model Work

    • 72 GB of VRAM is enough headroom to develop against and run local models in the tens of billions of parameters without renting cloud GPU time.
    • Blackwell 5th-gen Tensor Cores with FP41 accelerate agentic and generative AI at architecture-native speed.
    • 4th-gen RT Cores1 drive photoreal rendering previews without waiting on a render farm.
    • Universal MIG1 can partition the card into isolated instances when the workload calls for it.
    CPU · Intel Xeon W5-2455X

    12 Cores, 24 Threads, Exactly Enough

    • 12 cores / 24 threads on LGA4677 keep data loading, tokenization, and orchestration moving ahead of the GPU, not behind it.
    • Workstation-grade ECC memory support brings server-class reliability to long training and inference runs.
    • The accessible tier of this platform — the same board also accepts far higher core-count CPUs when a workload actually needs them.
    • Frees the GPU to do GPU work — for GPU-bound inference and rendering, VRAM capacity matters more than CPU core count.
    The Real Question

    What 72 GB Actually Holds

    GPU memory is the real ceiling on local model size. Here's the honest, illustrative math for what fits — not a benchmark, just the arithmetic:

    FP16 · Full Precision
    ~30B
    parameters
    ~2 bytes/parameter, plus headroom for context
    INT8 · Quantized
    ~65B
    parameters
    ~1 byte/parameter
    INT4 · Quantized
    ~130B
    parameters
    ~0.5 bytes/parameter, with some quality trade-off

    Illustrative, approximate rule-of-thumb math (bytes-per-parameter × model size), not a vendor benchmark. Actual usable capacity depends on context length, batch size, and framework overhead.

    AI Features · What This Actually Does

    Six Jobs, One Accessible Tower

    The listing's own AI Features, translated into what this specific configuration can actually do:

    Developer leaning back with a satisfied smile after a completed local training run, tower workstation beside the desk, warm amber lighting

    AI Development

    With 72GB of GPU memory, iterate on 30B-class models at full precision, or up to roughly 70B quantized, entirely on this desk. Kick off a run, step away, and it's done — fast local development loops without a cloud API bill.

    Data scientist reviewing dashboards next to the tower workstation, warm amber lighting

    Data Science

    12 cores / 24 threads keep data loading and preprocessing moving while the GPU handles the heavy lifting; 128GB of system memory holds large in-memory datasets.

    Engineer reviewing scientific simulation visuals next to the tower workstation, warm amber lighting

    HPC

    PCIe Gen 5 bandwidth between CPU and GPU, plus Blackwell's mixed-precision Tensor Cores, keep simulation workloads fed with data instead of waiting on it.

    Designer reviewing an architectural render next to the tower workstation, warm amber lighting

    AI-Driven Rendering & Graphics

    72GB of VRAM holds large scene and texture data without the memory-driven quality trade-offs that stall lower-capacity cards, with RT Cores accelerating the preview.

    Video editor working on a media timeline next to the tower workstation, warm amber lighting

    Video Content & Streaming

    Blackwell-generation video engines accelerate encode and decode for multi-stream editing, while 24 CPU threads handle timeline scrubbing and effects in parallel.

    Game developer reviewing a 3D engine viewport next to the tower workstation, warm amber lighting

    Game Development

    The same 72GB GPU that runs local AI models also drives real-time ray-traced previews inside the engine editor — AI tooling and graphics work on one machine.

    Scene photos are AI-generated illustrations of typical deployments, not photographs of this exact product.

    Own vs. Rent

    Local, Not Rented

    A 72GB professional GPU on your own desk changes the economics and the guarantees of running AI workloads, not just the raw performance:

    A relieved, excited developer looking at a savings dashboard showing a crossed-out cloud-billing icon and a glowing zero-dollar figure, with the warmly lit tower workstation beside the desk
    This Workstation
    Cost per run$0 marginal
    Your data & weightsStay on this desk
    GPU accessAlways yours, on demand
    Iteration limitHowever many you want
    Typical Cloud GPU Rental
    Cost per runBilled per token or per hour
    Your data & weightsLeave your network
    GPU accessShared — can queue
    Iteration limitMetered by budget

    Illustrative framing of the ownership trade-off, not a cost model for any specific cloud provider or workload.

    Full Configuration

    As Configured

    ZAW5-2455X-RP500072
    CPUIntel Xeon W5-2455X — 12-core / 24 threads, LGA46771
    GPUNVIDIA RTX PRO 5000 Blackwell — 72 GB GDDR7
    Memory128 GB DDR5, ECC Registered
    Storage2 TB M.2 NVMe (OS)  +  4 TB M.2 NVMe (Data)
    Networking2× 10 Gb/s LAN + 1× 10/100/1000 Mbps management LAN
    MotherboardGigabyte MW83-RP0 (Gigabyte W773-W80 barebone)
    PowerSingle 2000 W ATX 80 PLUS Gold
    Expansion8× RDIMM (8-channel DDR5), 5× PCIe 5.0 x16 + 2× PCIe 4.0 x16, 2× M.2 (both populated)
    OSUbuntu
    OptionalOpenClaw agent framework (pre-installed); Qwen 3.5 27B+ local LLM package
    FAQ

    Quick Answers Before You Buy

    What size of AI model can actually run on 72 GB of VRAM?

    Illustrative rule-of-thumb math, not a vendor benchmark: roughly 30B parameters at full FP16 precision, roughly 65B at INT8, or roughly 130B at INT4. Actual usable capacity depends on context length, batch size, and framework overhead.

    Why Xeon W5-2455X instead of a higher-core-count CPU?

    It's the accessible entry point into this chassis lineup's 72GB GPU tier — 12 cores and 24 threads are enough to keep data loading, preprocessing, and orchestration ahead of the GPU, not behind it.

    How much storage headroom is there?

    Both of the platform's 2 M.2 slots are populated (2TB OS + 4TB data). The case's 4 installed SATA hot-swap bays (plus 4 more optional) are open, since this configuration is all-NVMe.

    Does it come with an AI agent framework or local LLM pre-installed?

    The AI agent framework (OpenClaw) is pre-installed; a Qwen 3.5 27B or higher local LLM package is an optional add-on configured at order time.

    Is it eligible for government / public-sector purchasing?

    It is TAA compliant and assembled in the USA, with compliance documents available for purchase review.

    How is it supported?

    1-year parts and labor limited warranty backed by ABS manufacturer support. As a Build to Order system, it is custom built and stress-tested after purchase.

    Assembled in USA
    TAA Compliant
    72 GB Professional GPU
    Build to Order flexibility
    1. Intel-published core/thread count for the Xeon W5-2455X. GPU architecture features (5th-gen Tensor Cores, 4th-gen RT Cores, Universal MIG) are NVIDIA-published for the Blackwell professional GPU architecture generation, not SKU-specific benchmark figures. ABS Zaurion Ruby ZAW5-2455X-RP500072 · Gigabyte W773-W80 platform (LGA4677 socket) · Optional components and software are configured at time of purchase.

    Warranty & Returns

    Warranty, Returns, And Additional Information

    Warranty

    • Limited Warranty period (parts): 1 year
    • Limited Warranty period (labor): 1 year

    Return Policies

    • Return for refund within: non-refundable
    • Return for replacement within: non-replaceable
    • This item is covered by NeweggBusiness.com's Manufacturer Only Return Policy.
    • Read full return policy for details.
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