Landscape genetics -- the integration of population genetics with landscape ecology to identify how landscape featuresshape gene flow and population structure -- has become a cornerstone of conservation planning for large mammals infragmented landscapes. This study presents a comprehensive landscape genetics analysis of eight large mammalspecies across 24 European and African landscapes, using whole-genome low-coverage sequencing (2-4x) of 4,847individuals genotyped at 847,000 SNPs to characterise patterns of population structure, isolation-by-resistance, andgenetic connectivity across contrasting landscape configurations. All eight species showed significantisolation-by-resistance (IBR) -- genetic differentiation increasing with landscape resistance -- with resistance surfacesderived from species-specific habitat suitability models significantly outperforming Euclidean distance models inexplaining genetic structure (mean Mantel r improvement: +0.28 +- 0.06). Highway networks were the most consistentlandscape barrier across species (present in the top-3 resistance predictors for 7 of 8 species), while riparian corridorswere the most consistent facilitator of gene flow (significant positive partial Mantel correlation in 6 of 8 species). Effectivepopulation size (Ne) estimates ranged from 84 (Eurasian lynx, most isolated population) to 8,247 (African buffalo, leaststructured population). Landscape genetic connectivity scores -- quantifying current levels of inter-population gene flowrelative to historical baselines from palaeo-genomic analysis -- showed mean 47.4% reduction since 1850, with the mostsevere declines in large carnivores. Circuit-theoretic current flow maps identified 124 high-priority corridor restorationzones that, if implemented, would restore connectivity for all eight focal species at mean estimated cost of EUR 84 millionper species range.